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Efficiency and equity based freeway traffic network flow control

机译:基于效率和公平的高速公路交通网络流量控制

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A distributed approach in multi-objective optimization problem of traffic flow control and dynamic route guidance is presented. The problem domain, a freeway integration control application considers the efficiency and equity of system, is formulated as a distributed reinforcement learning problem. The Gini coefficient is adopted in this study as an indicator of equity. The DRL approach was implemented via a multi-agent control architecture where the decision agent was assigned to each of the on-ramp or VMS. The return of each agent is simultaneously updating a single shared policy. The control strategy's effect is demonstrated through its application to the simple freeway network. Analyses of simulation results using this approach show the equity of the system have a significant improvement over traditional control, especially for the case of large traffic demand. Using the DRL approach, the Gini coefficient of the network has been reduced by 28.99% compared to traditional method.
机译:提出了一种交通流控制和动态路径引导的多目标优化问题的分布式方法。问题领域是高速公路集成控制应用程序,它考虑了系统的效率和公平性,被表述为分布式强化学习问题。本研究采用基尼系数作为公平指标。 DRL方法是通过多代理控制体系结构实现的,在该体系中,将决策代理分配给每个入口或VMS。每个代理的返回正在同时更新一个共享策略。通过将控制策略应用到简单的高速公路网络中,可以证明控制策略的效果。使用这种方法的仿真结果分析表明,该系统的公平性比传统控制有了显着提高,尤其是在交通需求较大的情况下。使用DRL方法,与传统方法相比,网络的Gini系数降低了28.99%。

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