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Control Strategy of Signal Transition after Emergency Vehicle Signal Preemption

机译:应急车辆信号抢占后信号转换的控制策略

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摘要

Emergency vehicle (EV) plays an important role in evacuations or rescues when emergencies occur. To insure that an EV can transfer people in danger to emergency shelters or medical assistance organizations as soon as possible, EV signal preemption (EVSP) strategy is usually adopted. After EV has passed through the intersection, traffic signal has to transfer back to normal signal timing scheme. This paper focuses on the control strategy of EV signal transitioning from EVSP back to normal operation. Considering both efficiency and fairness, the maximum vehicles passing through in per unit time during the transition period and the minimum difference between the maximum and the minimum queue length after transition are selected as objectives, and a multi-objective optimization model is presented. A nondominated sorting genetic algorithm II (NSGA-II) is designed to solve the optimization model and unique encoding and decoding methods are presented. The established model and designed algorithm are verified and the control effect is analyzed. Simulation results indicate that by adopting the control strategy obtained by the presented model, the number of vehicles passing through in per unit time during the transition period is increased and the difference of vehicle length in different directions is reduced significantly, from which we can conclude that the control method proposed in this paper has good performance.
机译:当紧急情况发生时,应急车辆 (EV) 在疏散或救援中发挥着重要作用。为确保电动车能尽快将处于危险中的人员转移到紧急避难所或医疗援助机构,通常采用电动车信号抢占(EVSP)策略。电动汽车通过十字路口后,交通信号必须转换回正常的信号配时方案。本文重点研究了EV信号从EVSP转换回正常工作的控制策略。兼顾效率和公平性的考虑,选取过渡期内单位时间内通过的最大车辆数和过渡后最大和最小排队长度的最小差值作为目标,并提出了多目标优化模型。针对优化模型,设计了一种非支配排序遗传算法II(NSGA-II),并提出了独特的编码和译码方法。对所建立的模型和设计的算法进行了验证,并分析了控制效果。仿真结果表明,采用所提模型得到的控制策略,增加了过渡期内单位时间内通过的车辆数量,显著减小了不同方向的车辆长度差异,由此可以得出结论,本文提出的控制方法具有较好的性能。

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