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A Macroscopic Signal Optimization Model for Arterials Under Heavy Mixed Traffic Flows

机译:混合交通流量大的宏观信号优化模型

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摘要

This paper presents a generalized signal optimization model for arterials experiencing multiclass traffic flows. Instead of using conversion factors for nonpassenger cars, the proposed model applies a macroscopic simulation concept to capture the complex interactions between different types of vehicles from link entry and propagation, to intersection queue formation and discharging. Since both vehicle size and link length are considered in modeling traffic evolution, the resulting signal timings can best prevent the queue spillback due to insufficient bay length and the presence of a high volume of transit or other types of large vehicles. The efficiency of the proposed model has been compared with the benchmark program TRANSYT-7F under both passenger flows only and multiclass traffic scenarios from modest to saturated traffic conditions. Using the measures of effectiveness of the average-delay-per-intersection approach and the total arterial throughput during the control period, our extensive numerical results have demonstrated the superior performance of the proposed model during congested and/or multiclass traffic conditions. The success of the proposed model offers a new signal design method for arterials in congested downtowns or megacities where transit vehicles constitute a major portion of traffic flows.
机译:本文针对经历多类交通流的动脉,提出了一种通用的信号优化模型。提出的模型没有使用非乘用车的转换因子,而是应用了宏观仿真概念来捕获从链接进入和传播到路口队列形成和放行的不同类型车辆之间的复杂相互作用。由于在对交通流量进行建模时会同时考虑车辆的大小和链路长度,因此,由于间隔长度不足以及大量运输或其他类型的大型车辆的存在,最终的信号时序可以最好地防止队列溢出。在仅客流以及从适度交通状况到饱和交通状况的多类交通情况下,该提议模型的效率已与基准程序TRANSYT-7F进行了比较。使用平均交叉路口方法的有效性和控制期内的总动脉通量,我们广泛的数值结果证明了该模型在交通拥堵和/或多类交通情况下的优越性能。所提出的模型的成功为拥挤的市区或大城市中的过往车辆提供了一种新的信号设计方法,在这些城市中,过境车辆构成了交通流量的主要部分。

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