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Optimization of adaptive transit signal priority using parallel genetic algorithm

机译:基于并行遗传算法的自适应交通信号优先级优化

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Optimization of adaptive traffic signal timing is one of the most complex problems in traffic control systems. This paper presents an adaptive transit signal priority (TSP) strategy that applies the parallel genetic algorithm (PGA) to optimize adaptive traffic signal control in the presence of TSP. The method can optimize the phase plan, cycle length, and green splits at isolated intersections with consideration for the performance of both the transit and the general vehicles. A VISSIM (VISual SIMulation) simulation testbed was developed to evaluate the performance of the proposed PGA-based adaptive traffic signal control with TSP. The simulation results show that the PGA-based optimizer for adaptive TSP outperformed the fully actuated NEMA control in all test cases. The results also show that the PGA-based optimizer can produce TSP timing plans that benefit the transit vehicles while minimizing the impact of TSP on the general vehicles.
机译:自适应交通信号定时的优化是交通控制系统中最复杂的问题之一。本文提出了一种自适应交通信号优先级(TSP)策略,该策略应用并行遗传算法(PGA)在存在TSP的情况下优化自适应交通信号控制。该方法可以在考虑交叉路口和一般车辆的性能的情况下,优化相隔计划,周期长度和隔离路口的绿色分割。开发了一个VISSIM(可视化仿真)仿真试验台,以评估所提出的基于TGA的基于PGA的自适应交通信号控制的性能。仿真结果表明,在所有测试案例中,基于PGA的自适应TSP优化器均优于完全激活的NEMA控制。结果还表明,基于PGA的优化器可以产生使运输车辆受益的TSP计时计划,同时最大程度地减少TSP对普通车辆的影响。

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