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Markov Decision Petri Net and Markov Decision Well-Formed Net Formalisms

机译:马尔可夫决定Petri网和马尔可夫决定良好形成的净形式主义

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In this work, we propose two high-level formalisms, Markov Decision Petri Nets (MDPNs) and Markov Decision Well-formed Nets (MDWNs), useful for the modeling and analysis of distributed systems with probabilistic and non deterministic features: these formalisms allow a high level representation of Markov Decision Processes. The main advantages of both formalisms are: a macroscopic point of view of the alternation between the probabilistic and the non deterministic behaviour of the system and a syntactical way to define the switch between the two behaviours. Furthermore, MDWNs enable the modeler to specify in a concise way similar components. We have also adapted the technique of the symbolic reachability graph, originally designed for Well-formed Nets, producing a reduced Markov decision process w.r.t. the original one, on which the analysis may be performed more efficiently. Our new formalisms and analysis methods are already implemented and partially integrated in the Great-SPN tool, so we also describe some experimental results.
机译:在这项工作中,我们提出了两个高级形式主义,马尔可夫决定Petri网(MDPNS)和马尔可夫决策良好的网(MDWNS),可用于具有概率和非确定性特征的分布式系统的建模和分析:这些形式主义允许a马尔可夫决策过程的高级表示。两种形式主义的主要优点是:概率和系统的非确定性行为与系统之间的非确定性行为之间的宏观的观点以及在两个行为之间定义开关的句法方式。此外,MDWNS使建模器能够以简洁的方式指定类似的组件。我们还调整了符号可达性图的技术,最初为良好的网设计设计,产生了降低的马尔可夫决策过程W.R.T.可以更有效地执行分析的原始原件。我们的新型形式和分析方法已经实施,部分地集成在伟大的SPN工具中,因此我们还描述了一些实验结果。

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