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Joint design of multimodal transit networks and shared autonomous mobility fleets

机译:多式联运网络和共享自主移动舰队的联合设计

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Providing quality transit service to travelers in low-density areas, particularly travelers without personal vehicles, is a constant challenge for transit agencies. The advent of fully-autonomous vehicles (AVs) and their inclusion in mobility service fleets may allow transit agencies to offer better service and/or reduce their own capital and operational costs. This study focuses on the problem of allocating resources between transit patterns and operating (or subsidizing) shared-use AV mobility services (SAMSs) in a large metropolitan area. To address this question, a joint transit network redesign and SAMS fleet size determination problem (JTNR-SFSDP) is introduced, and a bi-level mathematical programming formulation and solution approach are presented. The upper-level problem modifies a transit network frequency setting problem (TNFSP) formulation via incorporating SAMS fleet size as a decision variable and allowing the removal of bus routes. The lower-level problem consists of a dynamic combined mode choice-traveler assignment problem (DCMC-TAP) formulation. The heuristic solution procedure involves solving the upper-level problem using a nonlinear programming solver and solving the lower-level problem using an iterative agent-based assignment-simulation approach. To illustrate the effectiveness of the modeling framework, this study uses traveler demand from Chicago along with the regions existing multimodal transit network. The computational results indicate significant traveler benefits, in terms of improved average traveler wait times, associated with optimizing the joint design of multimodal transit networks and SAMS fleets compared with the initial transit network design.
机译:为低密度地区的旅行者提供优质的交通服务,特别是在没有个人车辆的旅行者,是过境机构的不断挑战。全自治车辆(AVS)的出现及其在移动性服务船队中的包含可能允许过境机构提供更好的服务和/或降低自己的资本和运营成本。本研究重点介绍在大都市区中分配过境模式与运营(或补贴)共享使用AV移动性服务(SAMS)之间的资源的问题。为了解决这个问题,介绍了联合过境网络重新设计和SAMS舰队规模确定问题(JTNR-SFSDP),并提出了双级数学规划配方和解决方案方法。上级问题通过将SAMS车队大小作为决策变量并允许拆卸总线路线,修改过渡网络频率设置问题(TNFSP)配方。较低级别的问题包括动态组合模式 - 旅行者分配问题(DCMC-Tap)配方。启发式解决方案过程涉及使用非线性编程求解器解决上层问题,并使用基于迭代代理的分配模拟方法解决较低级别问题。为了说明建模框架的有效性,本研究使用来自芝加哥的旅行者需求以及区域现有的多式联运网络。根据与初始运输网络设计相比,改善平均旅行者等待时间,计算结果表明,在改进的平均旅行者等待时间方面表明了重要的旅行者受益。

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