Train rescheduling and platforming in large high-speed railway stations

IF 4.3 Q2 TRANSPORTATION
Jing Teng , Jinke Gao , Pengling Wang , Siyuan Qu
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引用次数: 0

Abstract

To deal with train delays in large high-speed railway stations, a multi-objective mixed-integer nonlinear programming (MO-MINLP) optimization model was proposed. The model used the arrival time, departure time, track occupation, and route selection as the decision variables, and fully considered the station infrastructure layout, train operational requirements, and time standards as limiting factors. The optimization objectives were to minimize train delays and reduce track and to route adjustments. To realize the large-scale and rapid solution of the MO-MINLP model, this study proposed a rolling horizon optimization algorithm that used half an hour as a time interval and solved the rescheduling and platforming problem of each time interval step-by-step. In numerical experiments, 227 train movements under delay circumstances in Hangzhoudong station were optimized by using the proposed model and solution algorithm. The results show that the proposed MO-MINLP model could resolve route conflicts, compress unnecessary dwell times, and reduce train delays, and the solution algorithm could efficiently increase the computational speed. The maximum solution time for optimizing the 227 train movements is 15 min 24 s.
大型高速铁路车站列车重新调度与站台
针对大型高铁车站列车延误问题,提出了一种多目标混合整数非线性规划优化模型。该模型以到达时间、出发时间、轨道占用、路线选择为决策变量,充分考虑车站基础设施布局、列车运行要求、时间标准等限制因素。优化目标是最小化列车延误,减少轨道和路线调整。为实现MO-MINLP模型的大规模快速求解,本研究提出了一种以“半小时”为时间间隔的滚动地平线优化算法,分步解决每个时间间隔的重调度与平台问题。在数值实验中,利用该模型和求解算法对杭州东站227列列车在延误情况下的运行进行了优化。结果表明,所提出的MO-MINLP模型能够有效地解决路线冲突,压缩不必要的停留时间,减少列车延误;该求解算法可以有效地提高计算速度。227次列车运行优化的最大求解时间为15分24秒。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
International Journal of Transportation Science and Technology
International Journal of Transportation Science and Technology Engineering-Civil and Structural Engineering
CiteScore
7.20
自引率
0.00%
发文量
105
审稿时长
88 days
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