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자율 에이전트와 마르코프 상태 전환을 이용한 하이브리드 시뮬레이션×확률적 마르코프 모형×
분야시뮬레이션시뮬레이션
계열Process / pipelineProcess / pipeline
기원 연도2000s1993
창시자Hybrid approach synthesized from Bonabeau (ABM) and Norris/classical Markov chain literatureMarkov, A. A. (probabilistic extension developed by Sonnenberg & Beck and others)
유형Hybrid simulation — agent-based modeling with Markov state transitionsProbabilistic state-transition model with Monte Carlo uncertainty propagation
원전Bonabeau, E. (2002). Agent-based modeling: Methods and techniques for simulating human systems. Proceedings of the National Academy of Sciences, 99(Suppl 3), 7280-7287. 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 ↗
별칭ABMM, Agent-Based Markov Chain Model, ABM-Markov hybrid, Agent Markov simulationProbabilistic Markov Model, Stochastic Markov Chain, SMM, Monte Carlo Markov Model
관련56
요약The Agent-Based Markov Model (ABMM) is a hybrid simulation framework that embeds Markov chain state-transition logic inside individual autonomous agents. Each agent independently samples its next state from a probability transition matrix, enabling the model to capture both micro-level heterogeneity across agents and the tractable probabilistic structure of Markov chains. The approach is widely used in health economics, epidemiology, social science, and operations research.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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ScholarGate방법 비교: Agent-based Markov model · Stochastic Markov Model. 2026-06-17에 다음에서 검색함: https://scholargate.app/ko/compare