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Implementing phase rotation in a person-based signal timing optimization framework

机译:在基于人的信号时序优化框架中实现相位旋转

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Person-based traffic signal timing optimization frameworks have recently been proposed to minimize total passenger delay at intersections. These traffic-responsive frameworks implicitly prioritize transit vehicles over cars due to their higher passenger occupancies while considering conflicts that might exist between transit vehicles arriving from conflicting approaches. However, previous person-based signal timing optimizations consider only fixed phase sequences, which limits their flexibility. This paper extends previously developed algorithms to consider phase rotation in which phase sequences may change within each cycle. The phase rotation is directly incorporated in the mathematical programming framework, but could also be accommodated using an enumeration approach for computational efficiency. The proposed signal timing optimization is tested using numerical simulations of an intersection in State College, PA. The results reveal that phase rotation can reduce overall passenger delay through significantly cutting down bus passenger delay while slightly increasing car passenger delay. However, the performance is sensitive to the assumption made in optimization about phase sequence in future cycles. Assuming a background sequence, rather than an optimized sequence in the current cycle, for future generally results in less frequent phase rotation actions. Such a practice can better maintain a pre-assigned background phase sequence but limits the reduction in passenger delays at the intersection.
机译:最近已经提出了基于人的交通信号定时优化框架,以最小化交叉路口的总乘客延误。这些交通响应性框架由于其较高的乘客占用率而隐含地将公交车辆优先于汽车,同时考虑了来自冲突方式的公交车辆之间可能存在的冲突。但是,以前基于人的信号时序优化只考虑固定相位序列,这限制了它们的灵活性。本文扩展了先前开发的算法,以考虑相位旋转,其中相位序列可能在每个周期内发生变化。相位旋转直接包含在数学编程框架中,但也可以使用枚举方法来适应,以提高计算效率。所建议的信号时序优化是使用宾夕法尼亚州立大学交叉口的数值模拟进行测试的。结果表明,相位旋转可以通过显着减少公交车乘客的延误,同时略微增加汽车乘客的延误,来减少总体乘客延误。但是,性能对未来周期中优化相序所做的假设很敏感。假设背景序列而不是当前周期中的优化序列,则将来通常会导致相位旋转动作的频率降低。这样的做法可以更好地维持预先指定的背景相序,但限制了交叉路口乘客延误的减少。

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