A multi-period asymmetric transit frequency design problem

IF 8.8 1区 工程技术 Q1 ECONOMICS Transportation Research Part E-Logistics and Transportation Review Pub Date : 2025-03-01 Epub Date: 2025-01-19 DOI:10.1016/j.tre.2024.103886
J. Gong , W.Y. Szeto , S. Sun
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Abstract

Transit frequency design is critical in determining the performance of public transit services. In the literature, single-period frequency design is often considered but ignores the demand variation over time of day. Moreover, in high-demand bus networks, the demand patterns are asymmetric in both directions of some bus routes. This study investigates a bus operation strategy to address these two issues. In this strategy, for each route, a class of buses serves both directions while the other class only serves one direction with high travel demand, leading to the two directions having different frequencies. A bilevel optimization problem is formulated for this strategy. The upper level problem is a multi-period asymmetric transit frequency design problem, which aims to determine the route frequencies of different classes of buses associated with each period to maximize the operating profit or social welfare. This upper level problem also considers deadhead trips between the bus depot and terminals or between terminals of different routes across periods. The lower level problem is a schedule-based user equilibrium transit assignment problem, taking elastic demand, the common line choice of passengers, and capacity constraints into account. A hybrid algorithm combining an enhanced artificial bee colony algorithm with the method of successive averages is proposed to tackle the bilevel optimization problem and then applied to the study of the Tin Shui Wai bus network to demonstrate the model properties. The effectiveness of the proposed algorithm is also examined. The results indicate that the proposed algorithm can produce better solutions compared with the modified hybrid genetic algorithm. Moreover, the proposed multi-period asymmetric design outperforms the existing design, which can achieve less passenger travel time and greater demand satisfaction, operating profit, and social welfare.
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一个多周期非对称过境频率设计问题
公交频率设计是决定公共交通服务性能的关键。在文献中,单周期频率设计经常被考虑,但忽略了需求随时间的变化。此外,在高需求公交网络中,一些公交线路的需求模式在两个方向上都是不对称的。本研究探讨巴士营运策略以解决这两个问题。在该策略中,对于每条路线,一类巴士服务两个方向,而另一类巴士只服务一个方向,并且出行需求高,导致两个方向的频率不同。针对该策略,提出了一个双层优化问题。上层问题是一个多时段的非对称公交频率设计问题,其目的是确定不同类别的公交车在每个时段关联的路线频率,以使运营利润或社会福利最大化。该上层问题还考虑了巴士站与终点站之间或不同时段不同路线终点站之间的死头行程。下层问题是考虑弹性需求、乘客公共线路选择和容量约束的基于调度的用户均衡交通分配问题。提出了一种将增强人工蜂群算法与逐次平均法相结合的混合算法来解决双层优化问题,并将其应用于天水围公交网络的研究中,以验证模型的性质。最后对算法的有效性进行了验证。结果表明,与改进的混合遗传算法相比,该算法能得到更好的解。此外,本文提出的多周期非对称设计优于现有设计,可以实现更少的乘客出行时间和更高的需求满意度、运营利润和社会福利。
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来源期刊
CiteScore
16.20
自引率
16.00%
发文量
285
审稿时长
62 days
期刊介绍: Transportation Research Part E: Logistics and Transportation Review is a reputable journal that publishes high-quality articles covering a wide range of topics in the field of logistics and transportation research. The journal welcomes submissions on various subjects, including transport economics, transport infrastructure and investment appraisal, evaluation of public policies related to transportation, empirical and analytical studies of logistics management practices and performance, logistics and operations models, and logistics and supply chain management. Part E aims to provide informative and well-researched articles that contribute to the understanding and advancement of the field. The content of the journal is complementary to other prestigious journals in transportation research, such as Transportation Research Part A: Policy and Practice, Part B: Methodological, Part C: Emerging Technologies, Part D: Transport and Environment, and Part F: Traffic Psychology and Behaviour. Together, these journals form a comprehensive and cohesive reference for current research in transportation science.
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