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Joint optimization of scheduling and capacity for mixed traffic with autonomous and human-driven buses: A dynamic programming approach

机译:与自主和人力驱动的公共汽车混合交通的联合优化调度和能力:动态编程方法

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摘要

It is a common practice for transit lines with fluctuating passenger demands to use demand-driven bus scheduling to reduce passenger waiting time and avoid bus overcrowding. However, current literature on the demand-driven bus scheduling generally assumes fixed bus capacity and exclusively optimizes bus dispatch headways. With the advent of connected and autonomous vehicle technology and the introduction of autonomous minibus/shuttle, the joint design of bus capacity and dispatch headway holds promises to further improving the system efficiency while reducing operating and passenger costs. This paper formulates this problem as an integer nonlinear programming model for transit systems operating with mixed human-driven and autonomous buses. In such mixed operating environment, the model simultaneously considers: (1) dynamic capacity design of autonomous bus, i.e., autonomous buses with varying capacity can be obtained by assembling and/or dissembling multiple autonomous minibuses; (2) trajectory control of autonomous bus, i.e., autonomous bus can dynamically adjust its running time as a function of its forward and backward headways; and (3) stop-level passenger boarding and alighting behavior. The objective of the model is designed to balance the trade-off between the operating costs of dispatching different types of bus and the costs of increased passenger waiting time due to inadequate bus dispatching. The model is solved using a dynamic programming approach. We show that the proposed model is effective in reducing passenger waiting time and total operating cost. Sensitivity analysis is further conducted to explore the impact of miscellaneous factors on optimal dispatching decisions, such as penetration rate of autonomous bus, bus running time variation, and passenger demand level.
机译:它是一个常见的乘客需求使用需求驱动的公共汽车调度来减少乘客等待时间并避免公共汽车过度拥挤。然而,需求驱动的总线调度的当前文献通常假设固定总线容量,并专门优化总线调度头部。随着连接和自主车辆技术的出现和自主小巴/梭的引入,公交车容量和调度前途的联合设计持有承诺进一步提高系统效率,同时降低运营和乘客成本。本文将该问题作为与混合人力驱动和自主公交车操作的过境系统的整数非线性编程模型。在这种混合操作环境中,模型同时考虑:(1)自主总线的动态容量设计,即通过组装和/或摆放多个自主小贩,可以获得具有不同容量的自主总线; (2)自主总线的轨迹控制,即自动总线可以动态地调节其运行时间作为其前向和向后头部的功能; (3)停止级客厅和升天行为。该模型的目的旨在平衡调度不同类型总线的运营成本与由于总线调度不足而增加的客人等候时间的成本。使用动态编程方法来解决该模型。我们表明所提出的模型可有效地减少乘客等候时间和总运营成本。进一步进行了敏感性分析,以探讨杂项因素对最佳调度决策的影响,例如自主总线,公交车运行时间变化和乘客需求水平的渗透率。

著录项

  • 来源
    《Transportation research》 |2020年第5期|598-619|共22页
  • 作者单位

    Beihang Univ Sch Transportat Sci & Engn Beijing Key Lab Cooperat Vehicle Infrastruct Syst Beijing 100191 Peoples R China;

    Univ Utah Dept Civil & Environm Engn 110 Cent Campus Dr Suite 2000 Salt Lake City UT 84112 USA;

    Beihang Univ Sch Transportat Sci & Engn Beijing Key Lab Cooperat Vehicle Infrastruct Syst Beijing 100191 Peoples R China;

    Beihang Univ Sch Transportat Sci & Engn Beijing Key Lab Cooperat Vehicle Infrastruct Syst Beijing 100191 Peoples R China|Beihang Univ Beijing Adv Innovat Ctr Big Data & Brain Comp Beijing 100191 Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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