A new reinforcement learning-based variable speed limit control approach to improve traffic efficiency against freeway jam waves

速度限制 强化学习 极限(数学) 变量(数学) 过程(计算) 控制(管理) 计算机科学 流量(计算机网络) 迭代学习控制 交通模拟 控制系统 模拟 控制工程 人工智能 运输工程 工程类 数学 微模拟 数学分析 电气工程 操作系统 计算机安全
作者
Yu Han,Andreas Hegyi,Le Zhang,Zhengbing He,Edward Chung,Pan Liu
出处
期刊:Transportation Research Part C-emerging Technologies [Elsevier BV]
卷期号:144: 103900-103900 被引量:43
标识
DOI:10.1016/j.trc.2022.103900
摘要

Conventional reinforcement learning (RL) models of variable speed limit (VSL) control systems (and traffic control systems in general) cannot be trained in real traffic process because new control actions are usually explored randomly, which may result in high costs (delays) due to exploration and learning. For this reason, existing RL-based VSL control approaches need a traffic simulator for training. However, the performance of those approaches are dependent on the accuracy of the simulators. This paper proposes a new RL-based VSL control approach to overcome the aforementioned problems. The proposed VSL control approach is designed to improve traffic efficiency by using VSLs against freeway jam waves. It applies an iterative training framework, where the optimal control policy is updated by exploring new control actions both online and offline in each iteration. The explored control actions are evaluated in real traffic process, thus it avoids that the RL model learns only from a traffic simulator. The proposed VSL control approach is tested using a macroscopic traffic simulation model to represent real world traffic flow dynamics. By comparing with existing VSL control approaches, the proposed approach is demonstrated to have advantages in the following two aspects: (i) it alleviates the impact of model mismatch, which occurs in both model-based VSL control approaches and existing RL-based VSL control approaches, via replacing knowledge from the models by knowledge from the real process, and (ii) it significantly reduces the exploration and learning costs compared to existing RL-based VSL control approaches. • An RL-based VSL control approach against freeway jam waves is developed. • The proposed method alleviates model mismatch via online/offline learning. • The proposed method has less exploration and learning costs than random exploration. • The proposed method is compared with various of existing VSL approaches.
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