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Centralité par vecteur propre dirigé×Centralité de mellem-position dirigée×
DomaineAnalyse de réseauxAnalyse de réseaux
FamilleMachine learningMachine learning
Année d'origine1972–19871977
Auteur d'origineBonacich, P.Freeman, L. C.
TypeCentrality measure (eigenvector-based, directed)Centrality measure (directed graph)
Source fondatriceBonacich, P. (1987). Power and centrality: A family of measures. American Journal of Sociology, 92(5), 1170–1182. DOI ↗Freeman, L. C. (1977). A set of measures of centrality based on betweenness. Sociometry, 40(1), 35–41. DOI ↗
Aliasdirected EC, asymmetric eigenvector centrality, right eigenvector centrality, left eigenvector centralitydirected BC, digraph betweenness, asymmetric betweenness centrality, directed Freeman betweenness
Apparentées55
RésuméDirected eigenvector centrality extends the classic eigenvector centrality to directed graphs by scoring each node according to the centrality of the nodes that point to it (in-direction) or that it points to (out-direction). A node earns a high score not merely by having many connections but by being connected to other highly central nodes, capturing asymmetric influence in citation networks, social hierarchies, and information flows.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.
ScholarGateJeu de données
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ScholarGateComparer des méthodes: Directed Eigenvector Centrality · Directed Betweenness Centrality. Consulté le 2026-06-15 sur https://scholargate.app/fr/compare