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An ELM-Based Approach for Estimating Train Dwell Time in Urban Rail Traffic

机译:基于ELM的城市轨道交通列车停留时间估计方法

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摘要

Dwell time estimation plays an important role in the operation of urban rail system. On this specific problem, a range of models based on either polynomial regression or microsimulation have been proposed. However, the generalization performance of polynomial regression models is limited and the accuracy of existing microsimulation models is unstable. In this paper, a new dwell time estimation model based on extreme learning machine (ELM) is proposed. The underlying factors that may affect urban rail dwell time are analyzed first. Then, the relationships among different factors are extracted and modeled by ELM neural networks, on basis of which an overall estimation model is proposed. At last, a set of observed data from Beijing subway is used to illustrate the proposed method and verify its overall performance.
机译:停留时间估计在城市轨道交通系统的运行中起着重要作用。针对这个特定问题,已经提出了一系列基于多项式回归或微观模拟的模型。但是,多项式回归模型的泛化性能有限,并且现有的微观仿真模型的准确性不稳定。提出了一种基于极限学习机的驻留时间估计模型。首先分析可能影响城市铁路停留时间的潜在因素。然后,通过ELM神经网络提取不同因素之间的关系并进行建模,并在此基础上提出了总体估计模型。最后,使用北京地铁的一组观测数据来说明该方法并验证其整体性能。

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  • 来源
    《Mathematical Problems in Engineering》 |2015年第9期|473432.1-473432.9|共9页
  • 作者单位

    Beijing Jiaotong Univ, State Key Lab Rail Traff Control & Safety, Beijing 100044, Peoples R China.;

    Beijing Jiaotong Univ, State Key Lab Rail Traff Control & Safety, Beijing 100044, Peoples R China.;

    Beijing Jiaotong Univ, State Key Lab Rail Traff Control & Safety, Beijing 100044, Peoples R China.;

    Beijing Jiaotong Univ, State Key Lab Rail Traff Control & Safety, Beijing 100044, Peoples R China.;

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