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계열Process / pipelineProcess / pipeline
기원 연도20051906
창시자Nilim & El Ghaoui; IyengarAndrei Markov
유형Robust probabilistic modelProbabilistic state-transition model
원전Nilim, A., El Ghaoui, L. (2005). Robust control of Markov decision processes with uncertain transition matrices. Operations Research, 53(5), 780-798. DOI ↗Norris, J. R. (1997). Markov Chains. Cambridge University Press, Cambridge. ISBN: 9780521633963
별칭RMM, Robust Markov Chain, Uncertain Markov Model, Interval Markov ModelMarkov Chain, Discrete-Time Markov Chain, DTMC, Markov Process
관련45
요약A Robust Markov Model applies robustness principles to Markov chains by replacing single-point transition probabilities with uncertainty sets, then optimizing against the worst-case realization. Originally developed for robust Markov decision processes in operations research, it is used wherever transition rates are estimated with noise or are subject to adversarial variation, ensuring decisions remain safe across the full uncertainty range.A Markov Model represents a system as a finite set of states and specifies the probability of moving from one state to another at each time step. By capturing only the current state — not the full history — it enables tractable analysis of complex dynamic processes across health economics, engineering reliability, operations research, and social-science modeling.
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