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베이즈 시스템 다이내믹스×베이지안 마르코프 모형×
분야시뮬레이션시뮬레이션
계열Process / pipelineProcess / pipeline
기원 연도2000s–2010s1990s–2000s
창시자Rahmandad, H.; Sterman, J. D. and related SD/Bayesian communitiesBriggs, A.; Sculpher, M.; and broader Bayesian statistics community
유형Simulation with probabilistic parameter learningProbabilistic state-transition simulation
원전Rahmandad, H., & Sterman, J. D. (2008). Heterogeneity and network structure in the dynamics of diffusion: Comparing agent-based and differential equation models. Management Science, 54(5), 998–1014. DOI ↗Briggs, A., Sculpher, M., Claxton, K. (2006). Decision Modelling for Health Economic Evaluation. Oxford University Press, Oxford. ISBN: 9780198526629
별칭BSD, Bayesian SD, Bayesian SD modeling, Probabilistic System DynamicsBayesian Markov Chain Model, Bayesian State-Transition Model, BMM, Bayesian Cohort Simulation
관련64
요약Bayesian System Dynamics (BSD) integrates Bayesian statistical inference with causal stock-and-flow simulation models. Prior knowledge about model parameters is updated using observed time-series data to produce posterior distributions, which are then propagated through the simulation to yield probabilistic forecasts and policy evaluations rather than single deterministic trajectories.A Bayesian Markov model is a state-transition simulation method that combines Markov chain cohort modeling with Bayesian statistical inference. By placing prior distributions on transition probabilities and updating them with observed data, the approach propagates full parameter uncertainty through the simulation, yielding posterior distributions over outcomes such as costs, life-years, or quality-adjusted life-years rather than single-point estimates.
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ScholarGate방법 비교: Bayesian System Dynamics · Bayesian Markov Model. 2026-06-15에 다음에서 검색함: https://scholargate.app/ko/compare