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Robustní Bayesovská síť×Aproximované bayesovské počty×
OborBayesovská statistikaSimulace
RodinaBayesian methodsProcess / pipeline
Rok vzniku1991-20002002
TvůrceFabio Cozman (credal networks); Peter Walley (imprecise probabilities)
Typprobabilistic graphical model with set-valued probabilitiesSimulation-based Bayesian inference
Původní zdrojCozman, F. G. (2000). Credal networks. Artificial Intelligence, 120(2), 199-233. DOI ↗Beaumont, M.A., Zhang, W. & Balding, D.J. (2002). Approximate Bayesian Computation in Population Genetics. Genetics, 162(4), 2025-2035. DOI ↗
Další názvyRBN, credal network, imprecise Bayesian network, sensitivity analysis in Bayesian networksABC, likelihood-free inference, simulation-based inference, Yaklaşık Bayesçi Hesaplama (ABC)
Příbuzné55
ShrnutíA Robust Bayesian Network extends a classical Bayesian network by replacing each precise conditional probability table with a set of allowable probability distributions — called a credal set. Instead of a single probability for each query, inference returns a range of probabilities, honestly reflecting uncertainty about the model's numeric parameters while preserving the interpretable directed-acyclic-graph structure.Approximate Bayesian Computation (ABC) is a family of simulation-based inference methods that estimate posterior distributions without requiring an analytically tractable likelihood function. Introduced by Beaumont, Zhang and Balding (2002) in the context of population genetics, ABC replaced the intractable likelihood with repeated model simulation and a comparison of summary statistics between simulated and observed data.
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ScholarGatePorovnat metody: Robust Bayesian Network · Approximate Bayesian Computation. Získáno 2026-06-15 z https://scholargate.app/cs/compare