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Dünaamiline eksponentiaalne juhuslike graafide mudel×Stochastic Block Model×
ValdkondVõrgustikuanalüüsVõrgustikuanalüüs
PerekondMachine learningProcess / pipeline
Tekkeaasta2010–20141983
LoojaHanneke, Fu & Xing; Krivitsky & Handcock
TüüpProbabilistic graphical model (temporal)Probabilistic generative graph model
AlgallikasHanneke, S., Fu, W., & Xing, E. P. (2010). Discrete temporal models of social networks. Electronic Journal of Statistics, 4, 585–605. DOI ↗Holland, P.W., Laskey, K.B. & Leinhardt, S. (1983). Stochastic Blockmodels: First Steps. Social Networks, 5(2), 109-137. DOI ↗
RööpnimetusedTERGM, Temporal ERGM, Dynamic ERGM, STERGMSBM, degree-corrected SBM, DCSBM, Stokastik Blok Modeli (SBM)
Seotud47
KokkuvõteThe Dynamic Exponential Random Graph Model (TERGM / STERGM) extends the classic ERGM framework to panel network data, modeling how a network's ties form and dissolve over time as a function of structural tendencies, nodal attributes, and the network's own past state. It provides statistically principled inference about longitudinal network change.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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ScholarGateVõrdle meetodeid: Dynamic Exponential Random Graph Model · Stochastic Block Model. Loetud 2026-06-17 aadressilt https://scholargate.app/et/compare