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Determining route-choice behaviour of public transport passengers using Bayesian statistical inference

机译:使用贝叶斯统计推断确定公共交通乘客的路线选择行为

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摘要

Using smart card systems for public transport fare collection has provided a great opportunity to access large-scale and high-quality travel data of transit users. This data has the potential to be used for modelling passenger behaviour. In this paper, Bayesian statistical inference is used to model passenger route-choice behaviour and to estimate attributes of travel-time components. The Bayesian approach provides a comprehensive posterior knowledge of the system. The posterior density integrates the observed passenger travel data with our prior knowledge about the transit network. Due to the high dimensional nature of the parameter space, the Markov Chain Monte Carlo Method is utilised to compute the mean value for each parameter. The suggested model is calibrated and validated using the fare card data from Brisbane, Australia, for March 2013. The dataset contains those journeys with an educational purpose. The inference results for link travel times are compared with the scheduled times from Brisbane's General Transit Feed Specification to show the reliability of public transport services. The estimated route-choice parameters indicate that transfer time is seven times more important than in-vehicle time for transit passengers.
机译:使用智能卡系统进行公共票价收集已经为访问过境用户的大规模高质量旅行数据提供了巨大的机会。该数据具有用于模拟旅客行为的潜力。在本文中,贝叶斯统计推断被用于对旅客路线选择行为进行建模并估计旅行时间成分的属性。贝叶斯方法提供了系统的全面后验知识。后密度将观察到的乘客旅行数据与我们对公交网络的先验知识相结合。由于参数空间的高维性质,因此使用了马尔可夫链蒙特卡罗方法来计算每个参数的平均值。使用澳大利亚布里斯班2013年3月的票价卡数据对建议的模型进行了校准和验证。数据集包含具有教育目的的那些旅程。将链接旅行时间的推断结果与布里斯班《通用公交提要》中的计划时间进行比较,以显示公共交通服务的可靠性。估计的路线选择参数表明,中转时间比过境乘客的车载时间重要七倍。

著录项

  • 来源
    《Road & Transport Research》 |2017年第1期|64-72|共9页
  • 作者单位

    Univ Queensland, Transport Engn, Sch Civil Engn, Brisbane, Qld, Australia;

    Univ Queensland, Sch Civil Engn, Brisbane, Qld, Australia;

    Univ Queensland, Transport Engn, Sch Civil Engn, Brisbane, Qld, Australia|Ctr Transport Strategy, Sch Civil Engn, Brisbane, Qld, Australia;

    Univ Queensland, Brisbane, Qld, Australia;

  • 收录信息 美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
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