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Analyse bayésienne de réseaux multiplexes×Modèle de blocs stochastiques×
DomaineAnalyse de réseauxAnalyse de réseaux
FamilleMachine learningProcess / pipeline
Année d'origine2014-20171983
Auteur d'origineDe Bacco, C. et al.; Kivela, M. et al.
TypeProbabilistic generative model for multiplex networksProbabilistic generative graph model
Source fondatriceDe Bacco, C., Power, E. A., Larremore, D. B., & Moore, C. (2017). Community detection, link prediction, and layer interdependence in multilayer networks. Physical Review E, 95(4), 042317. DOI ↗Holland, P.W., Laskey, K.B. & Leinhardt, S. (1983). Stochastic Blockmodels: First Steps. Social Networks, 5(2), 109-137. DOI ↗
AliasBayesian multi-layer network analysis, probabilistic multiplex network inference, Bayesian multilayer network modelling, BMNASBM, degree-corrected SBM, DCSBM, Stokastik Blok Modeli (SBM)
Apparentées47
RésuméBayesian multiplex network analysis applies probabilistic generative modelling to networks that carry more than one type of relational tie simultaneously — such as friendship, collaboration, and communication links among the same set of actors. By placing priors over community memberships, edge probabilities, and layer interdependencies, the framework yields posterior distributions rather than point estimates, supporting principled uncertainty quantification across all inferred network properties.The Stochastic Block Model (SBM), introduced by Holland, Laskey and Leinhardt (1983), is a probabilistic generative model for graphs that assigns nodes to latent blocks and parametrically estimates the connection probabilities between blocks. It is the foundational approach for community detection, core-periphery identification, and hierarchical structure discovery in network analysis.
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ScholarGateComparer des méthodes: Bayesian Multiplex Network Analysis · Stochastic Block Model. Consulté le 2026-06-15 sur https://scholargate.app/fr/compare