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Modelling Automotive Assembly Lines With Generalized Stochastic Petri Nets and Markov Decision Processes With Imprecise Probabilities

机译:用广义随机Petri网和Markov决策过程建模汽车装配线,具有不精确的概率

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This paper proposes a methodology for automotive manufacturing lines scheduling. This methodology is based on generalized stochastic Petri Nets and Markov decision processes with imprecise probabilities. The usual generalized stochastic Petri Nets is extended by allowing imprecision about probabilities to be explicitly represented and by human task time graph of different products to be attached. Once the system is modeled using this tool and its extensions, we translate the resulting models into Markov decision processes with imprecise probabilities, in order to compute optimal policies that will result in the line scheduling. This paper introduces an algorithm that performs this translation.
机译:本文提出了一种用于汽车制造线调度的方法。该方法基于具有不精确概率的广义随机Petri网和马尔可夫决策过程。通常通过允许明确地表示的概率和由不同产品的人为任务时间图进行明确表示的概率来延长常见的广义随机培养网。使用此工具及其扩展系统建模系统后,我们将生成的模型转换为具有不精确概率的Markov决策过程,以计算将导致行调度的最佳策略。本文介绍了一种执行此转换的算法。

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