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Hijerarhijsko Bayesovo zaključivanje×Hijerarhijsko Markovljevo pokretanje uzoraka Monte Carlo×
PodručjeBayesovska statistikaBayesovska statistika
ObiteljBayesian methodsBayesian methods
Godina nastanka1972 (Lindley & Smith); consolidated 1995–20131990
TvoracLindley & Smith; Gelman et al.Gelfand & Smith (1990), building on Geman & Geman (1984)
VrstaBayesian multilevel modelBayesian computational sampler
Temeljni izvorGelman, A., Carlin, J. B., Stern, H. S., Dunson, D. B., Vehtari, A. & Rubin, D. B. (2013). Bayesian Data Analysis (3rd ed.). CRC Press. ISBN: 978-1439840955Gelman, A., Carlin, J. B., Stern, H. S., Dunson, D. B., Vehtari, A. & Rubin, D. B. (2013). Bayesian Data Analysis (3rd ed.). CRC Press. ISBN: 978-1439840955
Drugi nazivimultilevel Bayesian modeling, Bayesian hierarchical model, nested Bayesian model, partial pooling modelhierarchical MCMC, MCMC for multilevel models, Bayesian hierarchical MCMC, multilevel MCMC sampling
Srodne66
SažetakHierarchical Bayesian inference is a probabilistic modeling framework that organises parameters into levels, placing priors on the group-level parameters and hyperpriors on the parameters governing those priors. It enables partial pooling of information across groups, balancing the extremes of treating each group as independent or merging them into a single estimate.Hierarchical Markov chain Monte Carlo applies MCMC sampling to hierarchical Bayesian models, jointly drawing from the posterior over both observation-level parameters and the hyperparameters that govern them. This allows principled uncertainty propagation across all levels of a multilevel structure, from individuals to groups to population, using algorithms such as Gibbs sampling, Metropolis-Hastings, or Hamiltonian Monte Carlo.
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ScholarGateUsporedite metode: Hierarchical Bayesian Inference · Hierarchical Markov Chain Monte Carlo. Preuzeto 2026-06-19 s https://scholargate.app/hr/compare