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A Continuous Petri Net Approach for Model Predictive Control of Traffic Systems

机译:交通系统模型预测控制的连续Petri网方法

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Traffic systems are often highly populated discrete event systems that exhibit several modes of behavior such as free flow traffic, traffic jams, stop-and-go waves, etc. An appropriate closed loop control of the congested system is crucial in order to avoid undesirable behavior. This paper proposes a macroscopic model based on continuous Petri nets as a tool for designing control laws that improve the behavior of traffic systems. The main reason to use a continuous model is to avoid the state explosion problem inherent to large discrete event systems. The obtained model captures the different operation modes of a traffic system and is highly compositional. In order to handle the variability of the traffic conditions, a model predictive control strategy is proposed and validated.
机译:交通系统通常是人口稠密的离散事件系统,具有多种行为模式,例如自由流动交通,交通拥堵,走走停停的波涛等。为了避免不良行为,对拥塞系统进行适当的闭环控制至关重要。本文提出了一种基于连续Petri网的宏观模型,将其作为设计改善交通系统行为的控制规律的工具。使用连续模型的主要原因是为了避免大型离散事件系统固有的状态爆炸问题。所获得的模型捕获了交通系统的不同操作模式,并且具有很高的构成性。为了应对交通状况的变化,提出并验证了模型预测控制策略。

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