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Model diskretnog vremenskog bloka×Stohastički blok model×
OblastAnaliza mrežaAnaliza mreža
PorodicaMachine learningProcess / pipeline
Godina nastanka2014–20171983
TvoracXu, K. S. & Hero, A. O.; Matias, C. & Miele, V.
TipGenerative probabilistic modelProbabilistic generative graph model
Temeljni izvorMatias, C. & Miele, V. (2017). Statistical clustering of temporal networks through a dynamic stochastic block model. Journal of the Royal Statistical Society: Series B, 79(4), 1119–1141. DOI ↗Holland, P.W., Laskey, K.B. & Leinhardt, S. (1983). Stochastic Blockmodels: First Steps. Social Networks, 5(2), 109-137. DOI ↗
Drugi naziviTSBM, dynamic stochastic block model, time-varying SBM, evolving block modelSBM, degree-corrected SBM, DCSBM, Stokastik Blok Modeli (SBM)
Srodne47
SažetakThe Temporal Stochastic Block Model (TSBM) extends the classic Stochastic Block Model to sequences of network snapshots, jointly inferring latent community memberships and how those memberships evolve across time. It combines a generative edge-probability model with a Markov process over block assignments, enabling principled statistical detection of community structure that changes over time.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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ScholarGateUporedite metode: Temporal Stochastic Block Model · Stochastic Block Model. Preuzeto 2026-06-17 sa https://scholargate.app/sr/compare