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首页> 外文期刊>Control Systems Technology, IEEE Transactions on >Two-Level Hierarchical Model-Based Predictive Control for Large-Scale Urban Traffic Networks
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Two-Level Hierarchical Model-Based Predictive Control for Large-Scale Urban Traffic Networks

机译:基于二级分层模型的大型城市交通网络预测控制

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摘要

Network-wide control of large-scale urban traffic networks using a hierarchical framework can be more efficient and flexible than centralized strategies for reducing the traffic congestion in big cities, because it can adequately address some problems that occur in controlling such large systems, e.g., computational complexity, multiple control objectives, weak robustness to uncertainties, and so on. In this paper, we propose a two-level hierarchical control framework for large-scale urban traffic networks. At the upper level, based on decomposing a heterogeneous traffic network into several homogeneous subnetworks, a higher level optimization problem using the concept of macroscopic fundamental diagram is formulated to deal with the traffic demand-balance problem. At the lower level, the controller with a more detailed traffic flow model for each subnetwork determines the optimal signal timing within the given region under the guidance of the upper-level controller through communication. For the application of this architecture in real time, the model-based predictive control approach is utilized so as to obtain the best solutions for both levels. Moreover, in order to decrease the computational complexity, a distributed control scheme within each subnetwork is developed at the lower level. The proposed approach is evaluated by simulation under different scenarios on a hypothetical urban traffic network, and the performance is compared with that of other control strategies.
机译:与用于减少大城市交通拥堵的集中化策略相比,使用分层框架对大型城市交通网络进行全网控制可能更为有效和灵活,因为它可以充分解决在控制此类大型系统时出现的一些问题,例如,计算复杂度,多个控制目标,对不确定性的弱鲁棒性等。在本文中,我们提出了针对大型城市交通网络的两级分层控制框架。在较高层次上,基于将异构交通网络分解为几个同构子网络的基础上,提出了使用宏观基本图的概念来解决交通需求平衡问题的更高层次的优化问题。在较低级别,具有每个子网更详细的业务流模型的控制器在高层控制器的指导下,通过通信确定给定区域内的最佳信号时序。对于该体系结构的实时应用,利用基于模型的预测控制方法来获得两个级别的最佳解决方案。此外,为了降低计算复杂度,在较低层上开发了每个子网内的分布式控制方案。在一个假设的城市交通网络上,通过在不同场景下的仿真对提出的方法进行了评估,并将其性能与其他控制策略进行了比较。

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