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Estimating the impacts of transit signal priority on intersection operations: A moving bottleneck approach

机译:估计交通信号优先权对交叉路口操作的影响:移动瓶颈方法

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摘要

Transit Signal Priority (TSP) is a commonly used strategy to improve bus operations at signalized intersections. However, the impacts of TSP in mixed traffic environments has not been analytically studied. This is a challenging problem since car queues can slow down buses, while slow-moving buses can create bottlenecks for cars in mixed traffic. Furthermore, it is typically assumed that TSP is activated using bus information obtained from a fixed detector. The benefits of TSP to buses could be improved by using information from connected buses or even connected cars. To tackle these challenges, this paper models buses as moving bottlenecks, incorporating it into a kinematic wave theory (KWT) model. A dynamic programming (DP) algorithm is developed to evaluate the changes in delays to buses and cars caused by TSP using KWT and queuing theories considering the bus as a moving bottleneck. The proposed algorithm is utilized for sensitivity tests to determine the changes to car and bus delays as a result of TSP implementation as a function of the bus detector location, bus stop location and dwell duration, the existence of a downstream bottleneck, and bus detection technology. The detector location sensitivity analysis reveals that there exists an optimal (and different) bus detector location associated with each demand. The bus stop location and bus dwell duration sensitivity tests show that TSP implementation can reduce system-wide (i.e., total car and bus) delays. However, in general, it is found that the presence of a downstream bottleneck can diminish the benefits of providing TSP. Finally, different bus detection technologies are tested to quantify the benefits of using connected buses or connected cars for TSP provision in terms of car and bus delay savings. As a result of this test, it is found that connected cars can significantly improve both car and bus delays if used for TSP provision.
机译:公交信号优先(TSP)是改善信号交叉口公交车运营的常用策略。但是,尚未对TSP在混合交通环境中的影响进行分析研究。这是一个具有挑战性的问题,因为汽车排队会降低公交车的速度,而慢速行驶的公交车会造成混合交通中的汽车瓶颈。此外,通常假设使用从固定检测器获得的总线信息激活TSP。通过使用来自连接的公交车甚至是连接的汽车的信息,可以改善TSP对公交车的好处。为了应对这些挑战,本文将公交车建模为运动瓶颈,并将其纳入运动波理论(KWT)模型中。开发了一种动态编程(DP)算法,以使用KWT和将公交车视为移动瓶颈的排队论来评估由TSP导致的公交车和汽车延误的变化。所提出的算法用于灵敏度测试,以确定由于TSP实施而导致的轿厢和公交车延迟的变化,该变化取决于公交车检测器位置,公交车站位置和停留时间,下游瓶颈的存在以及公交车检测技术。检测器位置灵敏度分析表明,存在与每个需求相关的最佳(和不同)总线检测器位置。巴士站的位置和巴士的停留时间敏感性测试表明,TSP的实施可以减少整个系统(即,汽车和巴士的总时延)的延迟。但是,通常发现下游瓶颈的存在会减少提供TSP的好处。最后,测试了不同的总线检测技术,以量化节省车厢和总线延迟方面使用联网公交车或联网轿车提供TSP的好处。作为该测试的结果,发现如果用于TSP提供,则联网汽车可以显着改善汽车和公交车的延误。

著录项

  • 来源
    《Transportation research》 |2019年第8期|346-358|共13页
  • 作者

    Wu Kan; Guler S. Ilgin;

  • 作者单位

    Penn State Univ, Dept Civil & Environm Engn, University Pk, PA 16802 USA;

    Penn State Univ, Dept Civil & Environm Engn, University Pk, PA 16802 USA;

  • 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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