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Right-of-way reallocation for mixed flow of autonomous vehicles and human driven vehicles

机译:自动车辆和人类驱动车辆混合流动的通行权重配

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摘要

Autonomous Vehicles (AVs) are bringing challenges and opportunities to urban traffic systems. One of the crucial challenges for traffic managers and local authorities is to understand the nonlinear change in road capacity with increasing AV penetration rate, and to efficiently reallocate the Right-of-Way (RoW) for the mixed flow of AVs and Human Driven Vehicles (HDVs). Most of the existing research suggests that road capacity will significantly increase at high AV penetration rates or an all-AV scenario, when AVs are able to drive with smaller headways to the leading vehicle. However, this increase in road capacity might not be significant at a lower AV penetration rate due to the heterogeneity between AVs and HDVs. In order to investigate the impacts of mixed flow conditions (AVs and HDVs), this paper firstly proposes a theoretical model to demonstrate that road capacity can be increased with proper RoW reallocation. Secondly, four different RoW reallocation strategies are compared using a SUMO simulation to cross-validate the results in a numerical analysis. A range of scenarios with different AV penetration rates and traffic demands are used. The results show that road capacity on a two-lane road can be significantly improved with appropriate RoW reallocation strategies at low or medium AV penetration rates, compared with the do-nothing RoW strategy.
机译:自治车辆(AVS)正在为城市交通系统带来挑战和机会。交通管理人员和地方当局的一个至关重要的挑战是了解道路产能的非线性变化,增加了AV渗透率,并有效地重新分配了AVS和人类驱动车辆的混合流动的右路(行)( HDVS)。大多数现有研究表明,当AVS能够以较小的前沿驾驶到领先车辆时,道路容量将在高AV渗透率或全AV场景中显着增加。然而,由于AVS和HDV的异质性,这种道路容量的增加可能在较低的AV渗透率下显着。为了调查混合流动条件(AVS和HDV)的影响,本文首先提出了理论模型,以证明可以使用适当的行重新分配来增加道路容量。其次,使用SUMO模拟进行比较四种不同的行重新分配策略,以在数值分析中交叉验证结果。使用具有不同AV渗透率和交通需求的一系列场景。结果表明,与不正确的行策略相比,双车道道路上的道路容量可以通过低或中等渗透率的适当行重新分配策略进行显着改善。

著录项

  • 来源
    《Transportation research》 |2020年第6期|102630.1-102630.21|共21页
  • 作者单位

    Imperial Coll London Ctr Transport Studies Dept Civil & Environm Engn Urban Syst Lab London England;

    Imperial Coll London Ctr Transport Studies Dept Civil & Environm Engn Urban Syst Lab London England;

    Imperial Coll London Ctr Transport Studies Dept Civil & Environm Engn Urban Syst Lab London England;

    Imperial Coll London Ctr Transport Studies Dept Civil & Environm Engn Urban Syst Lab London England;

    Imperial Coll London Ctr Transport Studies Dept Civil & Environm Engn Urban Syst Lab London England;

  • 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

    Autonomous vehicles; Mixed traffic conditions; Right-of-way reallocation; Road capacity of mixed flow;

    机译:自动车辆;混合交通状况;正确的重新分配;混合流动的道路容量;

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