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Integrated Model for Timetabling and Circulation Planning on an Urban Rail Transit Line: a Coupled Network-Based Flow Formulation

机译:城市轨道交通线时间表和循环规划的集成模型:基于耦合网络的流动制剂

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The recent development of advanced communication and data collection technologies enables a wide range of possibilities for systematic planning, operation, and control of urban rail transit systems in many megacities. While traditional methods consider tactical transit timetabling and operational circulation planning as two independent stages, this study aims to propose an optimization model and solution scheme to fully integrate these two supply-side stages in response to passenger demand dynamics. We first construct a new formulation through two coupled space-time network representations, namely, the transit space-time network and passenger space-time network, with many embedded constraints. In detail, the transit space-time network covers constraints involving train fleet size, deadheading and holding operations, headway requirements, and running and dwell times; meanwhile, the passenger space-time network is used to represent passenger traveling processes and the resulting trajectories. A coupled network-based flow optimization model is accordingly established to minimize passenger total travel time with a fixed train fleet size. To handle large-scale problem instances, we first adopt a constraint splitting technique to form two subsets of Lagrangian multipliers corresponding to individual passenger decision constraints and train capacity constraints. A dual decomposition scheme is then developed to iteratively coordinate the adjustment of Lagrangian multipliers and solve the related two subproblems. Specifically, the passenger subproblem is solved by a passenger loading algorithm, and the train subproblem is decomposed and solved by the alternating direction method of multipliers. The effectiveness of the proposed model and solution approach is evaluated on a real-world case study based on the Batong Line in the Beijing subway network.
机译:最近的先进通信和数据收集技术的发展使得各种可能性的城市轨道交通系统在许多大城市中的系统规划,操作和控制能够。虽然传统方法考虑战术过境时间表和运营循环规划作为两个独立阶段,但本研究旨在提出优化模型和解决方案方案,以完全整合这两个供应侧阶段以响应乘客需求动态。我们首先通过两个耦合的时空网络表示来构建新的制定,即传输时空网络和乘客空间网络,具有许多嵌入的约束。详细说明,运输时空网络涵盖涉及火车舰队规模,死头和保持操作,前进要求和运行和停留时间的限制;同时,乘客空间网络用于表示乘客旅行过程和所得轨迹。因此,建立了一种基于网络的流量优化模型,以使乘客总旅行时间用固定的火车队列尺寸最小化。为了处理大规模的问题实例,我们首先采用约束分割技术来形成与单个乘客决策约束和训练容量约束对应的拉格朗日乘法器的两个子集。然后开发了双分解方案以迭代协调拉格朗日乘法器的调整并解决相关的两个子问题。具体地,乘客子问题由乘客加载算法解决,并且列车子发布通过乘法器的交替方向方法分解和解决。拟议的模型和解决方案方法的有效性在基于北京地铁网络中的Batong线路的真实案例研究中进行了评估。

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