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An integrated optimal control system for emergency evacuation .

机译:应急疏散的集成优化控制系统。

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摘要

How to effectively control evacuation traffic has emerged as one of the critical research issues in transportation community, due to the unusually high demand surge and the often limited network capacity. This dissertation has developed an integrated traffic control system for evacuation operations that may require concurrent implementation of different control options, including traffic routing, contraflow operation, staged evacuation, and intersection signal control.; The system applies a hierarchical control framework to achieve a trade-off between modeling accuracy and operational efficiency for large-scale network applications. The network-level optimization formulations function to assign traffic to different evacuation corridors, select lane reversal configurations for contraflow operations, and identify the evacuation sequence of different demand zones for staged evacuation. With special constraints to approximate flow interactions at intersections, the formulations have introduced two network enhancement approaches with the aim to capture the real-world operational complexities associated with contraflow operations and staged evacuation.; The corridor-level optimization formulations, taking the network-level decisions as input, function to identify the critical control points and generate the optimal signal timings along the major evacuation corridors. The formulations feature the critical intersection concept to reduce the interference of side-street traffic on arterial evacuation flows. This study has also developed an efficient solution method using the Genetic Algorithm based heuristics along with an embedded macroscopic simulator.; This dissertation has also proposed a revised cell transmission model that aims to capture the complex temporal and spatial interactions of evacuation traffic flows for both levels of optimization formulations. This model can significantly reduce the size of the optimization problem, and yet preserve the ability in effectively modeling network traffic dynamics.; Numerical studies were conducted for each individual control component as well as for the entire integrated control system. The results reveal that the staged evacuation and contraflow strategies generated from the proposed formulations can substantially improve the evacuation efficiency and effectively reduce network congestions. Signal control strategies with the critical intersection concept also outperform the state-of-the-practice evacuation signal plans.
机译:由于异常高的需求激增和通常有限的网络容量,如何有效控制疏散交通已成为交通界的关键研究问题之一。本论文开发了一种用于疏散操作的集成交通控制系统,该系统可能需要同时实施不同的控制选项,包括交通路线,逆流操作,分段疏散和交叉路口信号控制。该系统应用了分层控制框架,以在大型网络应用的建模精度和操作效率之间取得平衡。网络级优化公式的作用是将交通分配给不同的疏散通道,为逆流操作选择车道反转配置,并识别不同需求区的疏散顺序以进行分阶段疏散。由于具有特殊的约束条件,以逼近交叉口处的流相互作用,这些公式引入了两种网络增强方法,目的是捕获与逆流操作和分阶段疏散相关的实际操作复杂性。走廊级优化公式以网络级决策为输入,用于识别关键控制点并沿主要疏散走廊生成最佳信号时序。这些公式具有关键的交叉路口概念,可减少侧街交通对动脉疏散流的干扰。该研究还开发了一种有效的解决方法,该方法使用了基于遗传算法的启发式技术以及嵌入式宏观模拟器。本论文还提出了一种修正的小区传输模型,旨在针对两个优化公式的层次来捕获疏散交通流的复杂时空相互作用。该模型可以显着减小优化问题的规模,但仍保留有效建模网络流量动态的能力。对每个单独的控制组件以及整个集成控制系统进行了数值研究。结果表明,从提出的配方中产生的分阶段疏散和逆流策略可以大大提高疏散效率并有效减少网络拥堵。具有关键交叉路口概念的信号控制策略也胜过实际疏散信号计划。

著录项

  • 作者

    Liu, Ying.;

  • 作者单位

    University of Maryland, College Park.$bCivil Engineering.;

  • 授予单位 University of Maryland, College Park.$bCivil Engineering.;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 190 p.
  • 总页数 190
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 建筑科学;
  • 关键词

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