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基于初始延误识别的实时节能地铁列车重新调度

Real-time energy-saving metro train rescheduling with primary delay identification.

作者信息

Huang Hangfei, Li Keping, Schonfeld Paul

机构信息

State Key Laboratory of Rail Traffic Control and Safety, Beijing Jiaotong University, Beijing, China.

Department of Civil and Environmental Engineering, University of Maryland, College Park, Maryland, United States of America.

出版信息

PLoS One. 2018 Feb 23;13(2):e0192792. doi: 10.1371/journal.pone.0192792. eCollection 2018.

Abstract

This paper aims to reschedule online metro trains in delay scenarios. A graph representation and a mixed integer programming model are proposed to formulate the optimization problem. The solution approach is a two-stage optimization method. In the first stage, based on a proposed train state graph and system analysis, the primary and flow-on delays are specifically analyzed and identified with a critical path algorithm. For the second stage a hybrid genetic algorithm is designed to optimize the schedule, with the delay identification results as input. Then, based on the infrastructure data of Beijing Subway Line 4 of China, case studies are presented to demonstrate the effectiveness and efficiency of the solution approach. The results show that the algorithm can quickly and accurately identify primary delays among different types of delays. The economic cost of energy consumption and total delay is considerably reduced (by more than 10% in each case). The computation time of the Hybrid-GA is low enough for rescheduling online. Sensitivity analyses further demonstrate that the proposed approach can be used as a decision-making support tool for operators.

摘要

本文旨在对延误情况下的地铁在线列车重新制定时刻表。提出了一种图表示法和一个混合整数规划模型来阐述该优化问题。求解方法是一种两阶段优化方法。在第一阶段,基于所提出的列车状态图和系统分析,利用关键路径算法具体分析并识别初始延误和后续延误。对于第二阶段,设计了一种混合遗传算法来优化时刻表,将延误识别结果作为输入。然后,基于中国北京地铁4号线的基础设施数据,进行了案例研究以证明该求解方法的有效性和效率。结果表明,该算法能够快速、准确地识别不同类型延误中的初始延误。能源消耗的经济成本和总延误都大幅降低(每种情况均超过10%)。混合遗传算法的计算时间足够短,可用于在线重新制定时刻表。敏感性分析进一步表明,所提出的方法可作为运营人员的决策支持工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ed89/5825068/8aa261970b59/pone.0192792.g001.jpg

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