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Simultaneous Optimization of Vehicle Arrival Time and Signal Timings within a Connected Vehicle Environment

机译:在连接的车辆环境中同时优化车辆到达时间和信号时序

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摘要

Most existing signal timing plans are optimized given vehicles’ arrival time (i.e., the time for the upcoming vehicles to arrive at the stop line) as exogenous input. In this paper, based on the connected vehicle (CV) technique, vehicles can be regarded as moving sensors, and their arrival time can be dynamically adjusted by speed guidance according to the current signal status and traffic conditions. Therefore, an integrated traffic control model is proposed in this study to optimize vehicle arrival time (or travel speed) and signal timing simultaneously. “Speed guidance model at a red light” and “speed guidance model at a green light” are presented to model the influences between travel speed and signal timing. Then, the methods to model the vehicle arrival time, vehicle delay, and number of stops are proposed. The total delay, which includes the control delay, queuing delay, and signal delay, is used as the objective of the proposed model. The decision variables consist of vehicle arrival time, starting time of green, and duration of green for each phase. The sliding time window is adopted to dynamically tackle the problems. Compared with the results optimized by the classical actuated signal control method and the fixed-time-based speed guidance model, the proposed model can significantly decrease travel delays as well as improve the flexibility and mobility of traffic control. The sensitivity analysis with the communication distance, the market penetration of connected vehicles, and the compliance rate of speed guidance further demonstrates the potential of the proposed model to be applied in various traffic conditions.
机译:大多数现有的信号定时计划优化给定的车辆的到达时间(即,对于即将到来的车辆的时间在停止线到达)作为外源输入。在本文中,基于该连接的车辆(CV)技术,车辆可以被视为移动的传感器,以及它们的到达时间可以由速度引导根据当前信号状态和交通状况动态调整。因此,一个集成的流量控制模型在该研究中,以优化车辆的到达时间(或移动速度)和信号的定时同时提出。 “在红灯速度引导模式”和“以绿色光速度引导模式”被呈现给行驶速度和信号定时之间的影响进行建模。然后,方法模型,提出一种车辆到达时间,车辆延误和停车次数。总延迟,其包括控制延迟,排队延迟,和信号延迟,作为目标所提出的模型的。决策变量包括车辆到达时间,开始绿色的时间和持续时间的绿色每个阶段。采用滑动时间窗口动态地解决问题。与通过经典致动信号控制方法和基于固定时间速度引导模型优化的结果进行比较,该模型能显著降低行驶耽误以及提高流量控制的灵活性和移动性。随着通信距离,连接车辆的市场渗透,和速度引导的达标率敏感性分析进一步表明在各种交通条件被应用所提出的模型的潜力。

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