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Stochastic optimization of traffic control and transit priority settings in VISSIM

机译:VISSIM中交通控制和交通优先权设置的随机优化

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Genetic algorithms have been shown to be effective tools for optimizations of traffic signal timings. However, only one tool that combines Genetic Algorithms and traffic microsimulation has matured to a commercial deployment: Direct CORSIM optimization, a feature of TRANSYT-7F. This paper presents a genetic algorithm formulation that builds on the best of the recorded methods, by extending their capabilities. It optimizes four basic signal timing parameters and transit priority settings using VISSIM microsimulation as the evaluation environment. The program is the first optimization tool that optimizes traffic control transit priority settings on roads with both private and transit traffic. These settings are optimized either simultaneously with the basic signal timings or separately, thus improving overall traffic operations without changing existing basic signal timings. The optimization has been tested on two VISSIM models: a suburban network of 12 signalized intersections in Park City, UT, and an urban corridor with transit operations in Albany, NY. The results show that timing plans optimized by the genetic algorithm outperformed the timing plans from the field and SYNCHRO. Optimization of the transit priority settings shows that adjustment of these settings has significant impact on travelers delay on the corridors with mixed traffic and transit operations.
机译:遗传算法已被证明是优化交通信号定时的有效工具。但是,只有一种将遗传算法和流量微仿真相结合的工具已经成熟,可以商业化部署:直接CORSIM优化,这是TRANSYT-7F的功能。本文提出了一种遗传算法公式,该公式以扩展的功能为基础,以最好的记录方法为基础。它使用VISSIM微仿真作为评估环境,优化了四个基本信号定时参数和传输优先级设置。该程序是第一个优化工具,可同时优化具有私人交通和公共交通的道路上的交通控制过境优先级设置。这些设置可以与基本信号时序同时进行优化,也可以分别进行优化,从而在不更改现有基本信号时序的情况下改善了总体流量操作。该优化已在两种VISSIM模型上进行了测试:一个位于犹他州帕克城的12个信号交叉口的郊区网络,以及一个在纽约州奥尔巴尼拥有中转业务的城市走廊。结果表明,通过遗传算法优化的时序方案优于现场和SYNCHRO的时序方案。对运输优先权设置的优化表明,这些设置的调整对交通和运输操作混合的走廊上的旅客延误产生重大影响。

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