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Beijesa tīkla difūzijas analīze×Beiziešu nejaušo grafu modelis (Bayesian Exponential Random Graph Model)×
NozareTīklu analīzeTīklu analīze
SaimeMachine learningMachine learning
Izcelsmes gads2010s2011
AutorsGomez Rodriguez, M.; Leskovec, J.; and related network science communityCaimo, A., & Friel, N.
TipsProbabilistic inference on network spreading processesBayesian statistical model for networks
PirmavotsGomez Rodriguez, M., Leskovec, J., & Scholkopf, B. (2012). Structure and Dynamics of Information Pathways in Online Media. Proceedings of the 6th ACM International Conference on Web Search and Data Mining (WSDM), 23–32. DOI ↗Caimo, A., & Friel, N. (2011). Bayesian inference for exponential random graph models. Social Networks, 33(1), 41–55. DOI ↗
Citi nosaukumiBayesian diffusion model, probabilistic network diffusion, Bayesian spreading process inference, BNDABayesian ERGM, Bayesian p-star model, Bayesian p* model, BERGM
Saistītās54
KopsavilkumsBayesian Network Diffusion Analysis applies Bayesian probabilistic inference to the study of how information, diseases, behaviors, or innovations propagate through a network. By placing priors over diffusion parameters and updating them with observed cascade data, it quantifies transmission rates, identifies influential spreaders, reconstructs latent propagation pathways, and provides full uncertainty estimates — all within a principled statistical framework.The Bayesian Exponential Random Graph Model (Bayesian ERGM or BERGM) extends the classical ERGM framework by placing prior distributions over the model parameters and using Markov chain Monte Carlo methods to obtain full posterior distributions. Introduced by Caimo and Friel (2011), it allows researchers to quantify parameter uncertainty and incorporate prior knowledge when modelling the structural features of social and other complex networks.
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ScholarGateSalīdzināt metodes: Bayesian Network Diffusion Analysis · Bayesian Exponential Random Graph Model. Izgūts 2026-06-15 no https://scholargate.app/lv/compare