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An Approach of Model Predictive Control for urban Transportation Network

机译:一种城市交通网络模型预测控制方法

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This paper focuses on the traffic signal control of urban transportation network, and presents an on-line optimal strategy by means of Model Predictive Control (MPC). To achieve this, firstly, the transportation network is modeled into a linear form with time-variant parameters. Then, for evaluating the system performance, this paper compares the transportation system with thermodynamic system, and introduces the entropy notion to measure the system disorder. Furthermore, to guarantee the robust stability of controller, the dissipativity theory is applied to address necessary conditions. By combining all these efforts into the framework of MPC, a traffic signal control strategy is presented to minimize the system disorder in finite horizons of time with respect to the constraints on both state and control. Finally, a network including four intersections is taken as an example to illustrate the results.
机译:本文侧重于城市交通网络的交通信号控制,通过模型预测控制(MPC)呈现在线最佳策略。为实现这一点,首先,运输网络与时变参数建模成线性形式。然后,为了评估系统性能,本文将运输系统与热力学系统进行比较,并引入熵概念来测量系统障碍。此外,为了保证控制器的稳定稳定性,应用耗散理论以解决必要的条件。通过将所有这些努力结合到MPC的框架中,提出了一种交通信号控制策略,以最小化关于两个状态和控制的限制时间的有限时间的系统障碍。最后,将包括四个交叉点的网络作为示例来说明结果。

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