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定向多层网络分析×有向介数中心性×
领域网络分析网络分析
方法族Machine learningMachine learning
起源年份2013–20141977
提出者Kivela, M.; De Domenico, M. et al.Freeman, L. C.
类型Multi-layer directed graph frameworkCentrality measure (directed graph)
开创性文献Kivela, M., Arenas, A., Barthelemy, M., Gleeson, J. P., Moreno, Y., & Porter, M. A. (2014). Multilayer networks. Journal of Complex Networks, 2(3), 203–271. DOI ↗Freeman, L. C. (1977). A set of measures of centrality based on betweenness. Sociometry, 40(1), 35–41. DOI ↗
别名directed multilayer network analysis, directed multiplex graphs, asymmetric multiplex network analysis, DMNAdirected BC, digraph betweenness, asymmetric betweenness centrality, directed Freeman betweenness
相关65
摘要Directed multiplex network analysis models systems where the same set of nodes are connected by multiple types of directed (asymmetric) relationships across distinct layers — such as citation flows, information cascades, or authority hierarchies co-existing simultaneously. It extends multiplex network analysis by preserving both layer identity and edge directionality, enabling richer structural and dynamic insights.Directed Betweenness Centrality extends Freeman's classic betweenness measure to directed graphs, quantifying how often a node lies on the shortest directed paths between all other pairs of nodes. It identifies gatekeepers, brokers, and bottlenecks in asymmetric flows such as information cascades, citation networks, and organizational hierarchies.
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ScholarGate方法对比: Directed Multiplex Network Analysis · Directed Betweenness Centrality. 于 2026-06-17 检索自 https://scholargate.app/zh/compare