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Assessing longitudinal stability of public transport users with smart card data

机译:评估具有智能卡数据的公共交通用户的纵向稳定性

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摘要

Many public transit networks around the world use the smart card data which provides the information about the users. In this regard, several methods are developed by mostly applying clustering approaches to perform data segmentation and discover the pattern of users. This study addresses the applicability of the temporal segmented data identified in 18 clusters for measuring the stability of users’ temporal habits as well as conducting descriptive analysis of the clusters, fare types and the days of the week to support the justification of findings. Each cluster contains users with their specific time and number of boardings. To understand whether the users are stable in the clusters, the sequential measurement based on the Euclidean distance between centres of the clusters, as the representatives of their members, is applied for each user over one month in this study. We ranked calculated measures to three different levels of high and medium stable or unstable using a histogram. The outcomes demonstrate the high stability of adult customers on three temporal routines, particularly regarding the days of the week. The users of the first and last working days of the week have a similar tendency in clusters’ membership tracks and pretty the same proportion of stability levels, having the minimum high stable and the maximum unstable users. Regarding the fare types, we recognized that regular students have the same unstable frequency in spite of having a significantly less frequency than regular.
机译:世界各地的许多公共交通网络使用智能卡数据提供有关用户的信息。在这方面,通过主要应用聚类方法来开发几种方法来执行数据分段并发现用户的模式。本研究解决了18个集群中识别的时间分段数据的适用性,以测量用户的时间习惯的稳定性以及对群集,票价类型和一周中的日子进行描述,以支持调查结果的说明。每个群集都包含具有其特定时间和登机次数的用户。为了了解用户是否稳定在集群中,基于集群中心之间的欧几里德距离的顺序测量,作为其成员的代表,在本研究的一个月内应用于每个用户。我们使用直方图将计算措施计算为三种不同水平的高中和中等稳定或不稳定。结果表明了成人客户在三个时间常规上的高稳定性,特别是在一周中的日子。本周第一个和最后一个工作日的用户在集群的会员轨道上具有类似的趋势,并且具有相同的稳定性水平比例,具有最小的高稳定和最大不稳定用户。关于票价类型,我们认识到,常规学生尽管具有比常规的频率明显较低,但常规学生具有相同的不稳定频率。

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