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Passenger Demand-Oriented High-Speed Train Stop Planning with Service-Node Features Analysis

机译:乘客需求导向的高速列车停止规划与服务节点功能分析

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摘要

As a critical foundation for train traffic management, a train stop plan is associated with several other plans in high-speed railway train operation strategies. The current approach to train stop planning in China is based primarily on passenger demand volume information and the preset high-speed railway station level. With the goal of efficiently optimising the stop plan, this study proposes a novel method that uses machine learning techniques without a predetermined hypothesis and a complex solution algorithm. Clustering techniques are applied to assess the features of the service nodes (e.g., the station level). A modified Markov decision process (MDP) is conducted to express the entire stop plan optimisation process considering several constraints (service frequency at stations and number of train stops). A restrained MDP-based stop plan model is formulated, and a numerical experiment is conducted to demonstrate the performance of the proposed approach with real-world train operation data collected from the Beijing-Shanghai high-speed railway.
机译:作为火车交通管理的关键基础,火车停止计划与高速铁路火车运营策略的其他几项计划相关。目前在中国培训停止规划的方法主要基于乘客需求量信息和预设的高速火车站。通过有效优化停止计划的目标,本研究提出了一种新的方法,该方法利用机器学习技术而没有预定假设和复杂的解决方案算法。应用聚类技术以评估服务节点的特征(例如,站级别)。考虑多个约束(站点和列车数量的服务频率停止的服务频率和车辆数量的服务频率停止的服务频率和列车数量)来表达修改的马尔可夫决策过程(MDP)。制定了受限制的基于MDP的停止计划模型,并进行了数值实验,以证明所提出的方法与从北京 - 上海高速铁路收集的真实火车运行数据的表现。

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