统计验证网络的入门

arXiv: Methodology Pub Date : 2019-02-19 DOI:10.3254/190007
S. Miccichè, R. Mantegna
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引用次数: 8

摘要

在这篇文章中,我们讨论了一些网络分析的方法,这些方法提供了关于单链路或单节点的信息,并考虑到经验观察到的系统的异质性。使用这种方法,当零假设在统计上被拒绝时,节点和链接的选择是可行的。我们将重点讨论在二部网络中使用(i)所谓的视差过滤器和(ii)统计验证网络的方法。对于这两种方法,我们讨论了使用多重假设检验校正的重要性。讨论了统计验证网络的具体应用。我们还讨论了如何使用统计验证的网络来(i)预处理大数据集和(ii)检测社区的核心,这些社区正在形成复杂系统中存在的节点集群中最紧密和最稳定的子集。
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A primer on statistically validated networks
In this contribution we discuss some approaches of network analysis providing information about single links or single nodes with respect to a null hypothesis taking into account the heterogeneity of the system empirically observed. With this approach, a selection of nodes and links is feasible when the null hypothesis is statistically rejected. We focus our discussion on approaches using (i) the so-called disparity filter and (ii) statistically validated network in bipartite networks. For both methods we discuss the importance of using multiple hypothesis test correction. Specific applications of statistically validated networks are discussed. We also discuss how statistically validated networks can be used to (i) pre-process large sets of data and (ii) detect cores of communities that are forming the most close-knit and stable subsets of clusters of nodes present in a complex system.
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