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Bejzovski stohastički model blokova×Višeslojni stohastički blok model×
OblastAnaliza mrežaAnaliza mreža
PorodicaMachine learningMachine learning
Godina nastanka2001–20142015-2017
TvoracNowicki, K. & Snijders, T. A. B.; extended by Peixoto, T. P.Peixoto, T. P.; De Bacco, C. and colleagues
TipProbabilistic generative model with Bayesian inferenceGenerative probabilistic model
Temeljni izvorPeixoto, T. P. (2014). Efficient Monte Carlo and greedy heuristic for the inference of stochastic block models. Physical Review E, 89(1), 012804. DOI ↗Peixoto, T. P. (2015). Inferring the mesoscale structure of layered, edge-valued, and time-varying networks. Physical Review E, 92(4), 042807. DOI ↗
Drugi naziviBayesian SBM, B-SBM, probabilistic block model, Bayesian community detection modelML-SBM, multilayer SBM, multi-layer stochastic block model, multiplex stochastic block model
Srodne54
SažetakThe Bayesian Stochastic Block Model (Bayesian SBM) is a principled probabilistic method for community detection in networks. It treats group membership as a latent variable and uses Bayesian inference to simultaneously recover block structure and select the number of communities, avoiding the resolution-limit bias that plagues modularity-based approaches.The Multilayer Stochastic Block Model (ML-SBM) is a generative probabilistic framework that extends the classical stochastic block model to networks with multiple relation types or layers. It simultaneously infers community structure and block-to-block connection probabilities across all layers, capturing how communities cohere differently depending on context or relationship type.
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ScholarGateUporedite metode: Bayesian Stochastic Block Model · Multilayer Stochastic Block Model. Preuzeto 2026-06-17 sa https://scholargate.app/sr/compare