Online Passenger Flow Control in Metro Lines

Oper. Res. Pub Date : 2023-01-06 DOI:10.1287/opre.2022.2417
Jinpeng Liang, Guodong Lyu, C. Teo, Ziyou Gao
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引用次数: 2

Abstract

Crowds management during peak commuting hours is a key challenge facing metro systems worldwide, which results in serious safety concerns and unfair public transit service for commuters on different origin-destination (o-d) pairs. In “Online Passenger Flow Control in Metro Lines,” the authors investigate the impact of online decision making on the value of passenger flow control solution methodologies. The authors formulate the problem as a stochastic dynamic program with a fairness (fill rate) constraint and exploit Blackwell's approachability theorem and Fenchel duality to characterize the attainable service level of each o-d pair. They use these insights to develop online policies that can enable more passengers boarding a train (efficiency) as well as ensure equitable service level (fairness) provided to each o-d pair. Numerical experiments on a set of transit data from Beijing show that this approach performs well compared with existing benchmarks in the literature.
地铁线路在线客流控制
上下班高峰时段的人群管理是全球地铁系统面临的一个关键挑战,它导致了严重的安全问题和不同始发目的地(o-d)对通勤者的不公平公共交通服务。在“地铁线路的在线客流控制”一文中,作者研究了在线决策对客流控制解决方案方法价值的影响。作者将该问题表述为一个具有公平性(填充率)约束的随机动态规划,并利用Blackwell的可接近性定理和Fenchel对偶来表征每个o-d对可达到的服务水平。他们利用这些见解来制定在线政策,使更多的乘客登上火车(效率),并确保为每个o-d对提供公平的服务水平(公平)。在北京的一组过境数据上进行的数值实验表明,与文献中现有的基准相比,该方法具有良好的性能。
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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