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Estimating Subway Passenger Paths Using Automatic Fare Collection Data

机译:使用自动票价收集数据估算地铁乘客路径

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Automatic fare collection (AFC) systems record both time and location information when a passenger enters or leaves the urban subway system. Using this data, this paper analyzed the travel time components including access time, platform wait time, transfer time, egress time, and in-vehicle time, as well as their corresponding distribution functions. Using this data, a time-dependent graphical model was created in order to estimate passenger time-space paths within an urban subway network. Based on subway train timetables, the time-extended network model produces feasible time-space paths. A time-space path sheds light on traveler movements throughout activity network. The proposed methodology provides a way to analyze subway passenger behavior, which can serve as a reference for dynamic traffic flow assignment for urban subway networks.
机译:自动票价收集(AFC)系统在乘客进入或离开城市地铁系统时记录时间和位置信息。使用此数据,本文分析了行进时间分量,包括访问时间,平台等待时间,传输时间,出口时间和车载时间,以及它们的相应分发功能。使用此数据,创建了一个时间相关的图形模型,以估计城市地铁网络内的客运时间空间路径。基于地铁列火车时间表,时间扩展网络模型产生可行的时空路径。在活动网络整个活动网络中的旅行者移动时,时间空间路径缩小。该提议的方法提供了一种分析地铁乘客行为的方法,可以作为城市地铁网络动态交通流量分配的参考。

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