Redesigning large-scale multimodal transit networks with shared autonomous mobility services

IF 7.6 1区 工程技术 Q1 TRANSPORTATION SCIENCE & TECHNOLOGY Transportation Research Part C-Emerging Technologies Pub Date : 2024-11-01 DOI:10.1016/j.trc.2024.104575
Max T.M. Ng , Hani S. Mahmassani , Ömer Verbas , Taner Cokyasar , Roman Engelhardt
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Abstract

This study addresses a large-scale multimodal transit network design problem, with Shared Autonomous Mobility Services (SAMS) as both transit feeders and an origin-to-destination mode. The framework captures spatial demand and modal characteristics, considers intermodal transfers and express services, determines transit infrastructure investment and path flows, and generates transit routes. A system-optimal multimodal transit network is designed with minimum total door-to-door generalized costs of users and operators, satisfying transit origin–destination demand within a pre-set infrastructure budget. Firstly, the geography, demand, and modes in each zone are characterized with continuous approximation. The decisions of network link investment and multimodal path flows in zonal connection optimization are formulated as a minimum-cost multi-commodity network flow (MCNF) problem and solved efficiently with a mixed-integer linear programming (MILP) solver. Subsequently, the route generation problem is solved by expanding the MCNF formulation to minimize intramodal transfers. The model is illustrated through a set of experiments with the Chicago network comprised of 50 zones and seven modes, under three scenarios. The computational results present savings in traveler journey time and operator cost demonstrating the potential benefits of collaboration between multimodal transit systems and SAMS.
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利用共享自主交通服务重新设计大规模多式联运网络
本研究解决的是大规模多式联运公交网络设计问题,共享自主移动服务(SAMS)既是公交支线,也是起点到终点模式。该框架捕捉了空间需求和模式特征,考虑了多式联运换乘和快速服务,确定了公交基础设施投资和路径流量,并生成了公交路线。设计出一个系统最优的多式联运交通网络,使用户和运营商的门到门通用总成本最小,在预设的基础设施预算范围内满足出发地到目的地的交通需求。首先,对每个区域的地理、需求和模式进行连续近似描述。在分区连接优化中,网络连接投资和多式联运路径流量的决策被表述为最小成本多商品网络流量(MCNF)问题,并通过混合整数线性规划(MILP)求解器进行高效求解。随后,通过扩展 MCNF 问题的表述来解决线路生成问题,从而最大限度地减少模内转移。该模型通过芝加哥网络的一组实验进行了说明,该网络由 50 个区域和七种模式组成,在三种情况下运行。计算结果显示了乘客行程时间和运营商成本的节省,证明了多式联运公交系统和 SAMS 之间合作的潜在优势。
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来源期刊
CiteScore
15.80
自引率
12.00%
发文量
332
审稿时长
64 days
期刊介绍: Transportation Research: Part C (TR_C) is dedicated to showcasing high-quality, scholarly research that delves into the development, applications, and implications of transportation systems and emerging technologies. Our focus lies not solely on individual technologies, but rather on their broader implications for the planning, design, operation, control, maintenance, and rehabilitation of transportation systems, services, and components. In essence, the intellectual core of the journal revolves around the transportation aspect rather than the technology itself. We actively encourage the integration of quantitative methods from diverse fields such as operations research, control systems, complex networks, computer science, and artificial intelligence. Join us in exploring the intersection of transportation systems and emerging technologies to drive innovation and progress in the field.
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