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ロバストモンテカルロシミュレーション×ロバストベイズ推論×
分野ベイズベイズ
系統Bayesian methodsBayesian methods
提唱年1990s–2000s1984–1990
提唱者Saltelli, Rubinstein, and the uncertainty-quantification communityJames O. Berger
種類Robust simulation / uncertainty quantificationBayesian sensitivity / robustness framework
原典Saltelli, A., Ratto, M., Andres, T., Campolongo, F., Cariboni, J., Gatelli, D., Saisana, M. & Tarantola, S. (2008). Global Sensitivity Analysis: The Primer. Wiley. ISBN: 978-0470059975Berger, J. O. (1990). Robust Bayesian analysis: sensitivity to the prior. Journal of Statistical Planning and Inference, 25(3), 303–328. DOI ↗
別名robust MC simulation, Monte Carlo robustness analysis, robust stochastic simulation, uncertainty-robust Monte CarloBayesian sensitivity analysis, prior robustness, epsilon-contamination Bayesian analysis, robust Bayes
関連66
概要Robust Monte Carlo simulation extends standard Monte Carlo by explicitly accounting for uncertainty in input distributions, model structure, or parameter assumptions. Rather than assuming a single fixed probability distribution for each input, the analyst considers a family of plausible distributions and evaluates how sensitive the output is to those choices, yielding conclusions that hold across a range of reasonable assumptions.Robust Bayesian inference extends standard Bayesian analysis by replacing a single prior distribution with a class of plausible priors and examining how much the posterior conclusions change across that class. Instead of committing to one prior, the analyst bounds the posterior quantity of interest, revealing whether findings are stable or critically dependent on prior assumptions.
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ScholarGate手法を比較: Robust Monte Carlo Simulation · Robust Bayesian Inference. 2026-06-17に以下より取得 https://scholargate.app/ja/compare