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Centralidade do Autovetor Temporal×Centralidade de Grau Temporal×
ÁreaAnálise de redesAnálise de redes
FamíliaMachine learningMachine learning
Ano de origem2011-20172011–2012
Autor originalGrindrod, P.; Higham, D. J.; Taylor, D. et al.Holme, P.; Saramaki, J.; Kim, H.; Anderson, R.
TipoCentrality measure for temporal networksCentrality measure (temporal extension)
Fonte seminalGrindrod, P., Parsons, M. C., Higham, D. J., & Estrada, E. (2011). Communicability across evolving networks. Physical Review E, 83(4), 046120. DOI ↗Holme, P. & Saramaki, J. (2012). Temporal networks. Physics Reports, 519(3), 97–125. DOI ↗
Outros nomesdynamic eigenvector centrality, time-varying eigenvector centrality, TEC, temporal communicability centralitytime-varying degree centrality, dynamic degree centrality, temporal node degree, TDC
Relacionados56
ResumoTemporal eigenvector centrality extends the classical eigenvector centrality to networks that change over time. By accounting for the ordering and timing of connections, it identifies nodes that are influential not merely because of many simultaneous connections, but because they sit at the crossroads of sequentially important pathways across multiple time slices of the network.Temporal degree centrality extends the classic degree centrality to time-varying networks by counting how many distinct contacts a node accumulates over time. Rather than collapsing a dynamic network into a single static graph, it preserves the temporal order of edges, yielding a more faithful measure of a node's activity and reachability across the observation window.
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ScholarGateComparar métodos: Temporal Eigenvector Centrality · Temporal Degree Centrality. Recuperado em 2026-06-17 de https://scholargate.app/pt/compare