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Centralitat dinàmica per vectors propis×Anàlisi de Xarxes Temporals×
CampAnàlisi de xarxesAnàlisi de xarxes
FamíliaMachine learningProcess / pipeline
Any d'origen2010s2012
Autor originalLerman, K.; Ghosh, R.; Kang, J. H.Holme & Saramäki (2012) — seminal framework
TipusCentrality measure for time-evolving networksDynamic graph analysis
Font seminalLerman, K., Ghosh, R., & Kang, J. H. (2010). Centrality metric for dynamic networks. Proceedings of the 8th Workshop on Mining and Learning with Graphs (MLG '10). ACM. link ↗Holme, P. & Saramäki, J. (2012). Temporal Networks. Physics Reports, 519(3), 97-125. DOI ↗
Àliestemporal eigenvector centrality, time-varying eigenvector centrality, dynamic EC, evolving eigenvector centralitydynamic network analysis, time-varying network analysis, Zamansal Ağ Analizi (Temporal / Dynamic Networks)
Relacionats43
ResumDynamic eigenvector centrality extends the classic eigenvector centrality measure to networks that change over time. Rather than computing a single leading eigenvector on a static adjacency matrix, it tracks how a node's influence — defined by the importance of its neighbours — evolves across snapshots or time windows. The method is used in social network analysis, epidemiology, and information diffusion studies where network topology shifts continuously.Temporal network analysis, formalised by Holme and Saramäki in their landmark 2012 Physics Reports survey, is the study of networks in which edges appear and disappear over time. Rather than collapsing all contacts into a single static graph, the approach preserves the precise timing of interactions — whether as contact sequences, time-stamped event lists, or windowed snapshots — and uses that timing to track how influence, disease, or information can actually propagate through the system.
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ScholarGateCompara mètodes: Dynamic Eigenvector Centrality · Temporal Network Analysis. Recuperat el 2026-06-15 de https://scholargate.app/ca/compare