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Байесовское моделирование методом Монте-Карло×Байесовский анализ чувствительности×
ОбластьИмитационное моделированиеИмитационное моделирование
СемействоProcess / pipelineProcess / pipeline
Год появления1987–1990s1984–1994
Автор методаO'Hagan, A. and colleaguesBerger, J. O. (Bayesian robustness); Saltelli et al. (global SA integration)
ТипSimulation / uncertainty quantificationUncertainty propagation and sensitivity quantification
Основополагающий источникO'Hagan, A., Buck, C. E., Daneshkhah, A., Eiser, J. R., Garthwaite, P. H., Jenkinson, D. J., Oakley, J. E., & Rakow, T. (2006). Uncertain Judgements: Eliciting Experts' Probabilities. Wiley. ISBN: 9780470029992Berger, J. O. (1994). An overview of robust Bayesian analysis. Test, 3(1), 5–124. DOI ↗
Другие названияBayesian MC, BMC simulation, Bayesian stochastic simulation, Bayesian uncertainty propagationBSA, Bayesian SA, Bayesian robustness analysis, prior sensitivity analysis
Связанные45
СводкаBayesian Monte Carlo Simulation integrates Bayesian statistical inference with Monte Carlo sampling to propagate uncertainty through complex models. Instead of drawing samples from arbitrary distributions, it conditions sampling on observed data and expert prior knowledge via Bayes' theorem, yielding posterior-based uncertainty estimates that are both statistically coherent and interpretable in probabilistic terms.Bayesian Sensitivity Analysis (BSA) combines Bayesian inference with sensitivity analysis to systematically quantify how uncertain model inputs — expressed as prior probability distributions — propagate through a model and influence outputs. It identifies which parameters most drive output variability, supporting robust conclusions under genuine uncertainty.
ScholarGateНабор данных
  1. v1
  2. 2 Источники
  3. PUBLISHED
  1. v1
  2. 2 Источники
  3. PUBLISHED

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ScholarGateСравнение методов: Bayesian Monte Carlo Simulation · Bayesian Sensitivity Analysis. Получено 2026-06-15 из https://scholargate.app/ru/compare