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A Bayes Network Based Model of Stranded Passengers Transfering among Transportation Hubs in Climate Disaster

机译:基于抵抗乘客的贝叶斯网络基于股票乘客在灾难交通枢纽中转移

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Aiming to the case of large number of people being stranded at the major transportation hubs (such as bus station, railway stations, airports, etc.) in climate disasters, we developed a model to describe passengers' delay and tranfer among transportation hubs. The authors believe that the weather, traffic node status (open or closed), the service status (normal, delayed or canceled), estimated wait time and estimated transfer cost are the main factor in decision-making of passengers. Bayesian network and influence diagram are used in model to simulate passenger's decision-making process. The research of this paper establish a theoretical foundation for further study of stranded passengers distribution and transfer pattern at traffic hubs, then for giving the propose to the government emergency management decision-making.
机译:针对大量人民在气候灾害中的主要交通中心(如公交车站,火车站,机场等)搁浅的案例,我们开发了一种描述乘客的延迟和交通枢纽的拖延和传输的模型。作者认为,天气,交通节点状态(打开或关闭),服务状态(正常,延迟或取消),估计等待时间和估计的转移成本是乘客决策的主要因素。贝叶斯网络和影响图用于模型以模拟乘客的决策过程。本文的研究为进一步研究了交通枢纽的滞留乘客分销和转移模式的进一步研究,为政府应急管理决策提供了理论基础。

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