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다목적 마르코프 모델×확률적 마르코프 모형×
분야시뮬레이션시뮬레이션
계열Process / pipelineProcess / pipeline
기원 연도20061993
창시자Chatterjee, K., Majumdar, R., Henzinger, T. A. (formal; survey: Roijers et al.)Markov, A. A. (probabilistic extension developed by Sonnenberg & Beck and others)
유형Stochastic sequential decision model with multiple objectivesProbabilistic state-transition model with Monte Carlo uncertainty propagation
원전Roijers, D. M., Vamplew, P., Whiteson, S., & Dazeley, R. (2013). A survey of multi-objective sequential decision-making. Journal of Artificial Intelligence Research, 48, 67–113. DOI ↗Sonnenberg, F. A., & Beck, J. R. (1993). Markov models in medical decision making: A practical guide. Medical Decision Making, 13(4), 322–338. DOI ↗
별칭MOMDP, Multi-objective MDP, Multi-criteria Markov Decision Process, MO-Markov ModelProbabilistic Markov Model, Stochastic Markov Chain, SMM, Monte Carlo Markov Model
관련56
요약A Multi-objective Markov Model (MOMDP) extends classical Markov Decision Processes to settings where an agent must optimize several reward signals simultaneously. Instead of a single optimal policy, the model produces a Pareto-optimal set of policies, enabling decision-makers to navigate trade-offs between competing goals such as cost, risk, and throughput over time.A Stochastic Markov Model is a simulation technique that represents a system as a set of mutually exclusive health or decision states, moves a cohort (or individual agents) through those states using probabilistically sampled transition parameters, and aggregates outcomes across thousands of Monte Carlo iterations to produce full probability distributions over costs, outcomes, or rankings rather than single point estimates.
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