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An adaptive neighborhood search metaheuristic for the integrated railway rapid transit network design and line planning problem

机译:铁路快速公交网络综合设计与线路规划问题的自适应邻域搜索元启发法。

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We model and solve the Railway Rapid Transit Network Design and Line Planning (RRTNDLP) problem, which integrates the two first stages in the Railway Planning Process. The model incorporates costs relative to the network construction, fleet acquisition, train operation, rolling stock and personnel management. This implies decisions on line frequencies and train capacities since some costs depend on line operation. We assume the existence of an alternative transportation system (e.g. private car, bus, bicycle) competing with the railway system for each origin-destination pair. Passengers choose their transportation mode according to the best travel times. Since the problem is computationally intractable for realistic size instances, we develop an Adaptive Large Neighborhood Search (ALNS) algorithm, which can simultaneously handle the network design and line planning problems considering also rolling stock and personnel planning aspects. The ALNS performance is compared with state-of-the-art commercial solvers on a small-size artificial instance. In a second stream of experiments, the ALNS is used to design a railway rapid transit network in the city of Seville. (C) 2016 Elsevier Ltd. All rights reserved.
机译:我们对铁路快速运输网络设计和线路规划(RRTNDLP)问题进行建模和解决,该问题将铁路规划过程中的前两个阶段结合在一起。该模型包括与网络建设,车队购置,列车运营,机车车辆和人员管理有关的成本。由于某些成本取决于线路运行,因此这意味着要决定线路频率和列车容量。我们假设存在一个替代运输系统(例如私家车,公共汽车,自行车),它与铁路系统竞争每个起点-终点对。旅客根据最佳旅行时间选择交通工具。由于该问题对于实际大小的实例在计算上难以解决,因此我们开发了自适应大邻域搜索(ALNS)算法,该算法可以同时处理网络设计和线路规划问题,同时还要考虑机车车辆和人员规划方面。在小型人工实例上,将ALNS的性能与最新的商业求解器进行了比较。在第二批实验中,ALNS用于设计塞维利亚市的铁路快速运输网络。 (C)2016 Elsevier Ltd.保留所有权利。

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