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Iterative Learning Control Approach for Signaling Split in Urban Traffic Networks with Macroscopic Fundamental Diagrams

机译:宏观基本图的城市交通网络信号分离迭代学习控制方法

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Recent analysis of field experiments in cities revealed that a macroscopic fundamental diagram (MFD) relating network outflow and network vehicle accumulation exists in the urban traffic networks. It has been further confirmed that an MFD is well defined if the network has regular network topology and homogeneous spatial distribution of vehicle accumulation. However, many real urban networks have different levels of heterogeneity in the spatial distribution of vehicle accumulation. In order to improve the mobility in heterogeneously congested networks, we propose an iterative learning control approach for signaling split, which aims at distributing the accumulation in the networks as homogeneously as possible and ensuring the networks have a larger outflow. The asymptotic convergence of the proposed approach is proved by rigorous analysis and the effectiveness is further demonstrated by extensive simulations.
机译:最近对城市现场实验的分析表明,城市交通网络中存在与网络流出和网络车辆积累相关的宏观基本图(MFD)。进一步证实,如果网络具有规则的网络拓扑和车辆堆积的均匀空间分布,则可以很好地定义MFD。但是,许多实际的城市网络在车辆积累的空间分布上具有不同程度的异质性。为了提高异构拥塞网络中的移动性,我们提出了一种用于信令拆分的迭代学习控制方法,该方法旨在尽可能均匀地分布网络中的累积量并确保网络具有更大的流出量。通过严格的分析证明了该方法的渐近收敛性,并通过大量的仿真进一步证明了其有效性。

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  • 来源
    《Mathematical Problems in Engineering》 |2015年第19期|975328.1-975328.12|共12页
  • 作者单位

    Northwestern Polytech Univ, Sch Automat, Xian 710072, Peoples R China;

    Northwestern Polytech Univ, Sch Automat, Xian 710072, Peoples R China;

    Northwestern Polytech Univ, Sch Automat, Xian 710072, Peoples R China;

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