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Perspectives on stability and mobility of transit passenger's travel behaviour through smart card data

机译:通过智能卡数据透视过境旅客出行行为的稳定性和机动性

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摘要

Existing studies have extensively used spatiotemporal data to discover the mobility patterns of various types of travellers. Smart card data (SCD) collected by the automated fare collection systems can reflect a general view of the mobility pattern of public transit riders. Mobility patterns of transit riders are temporally and spatially dynamic, and therefore difficult to measure. However, few existing studies measure both the mobility and stability of transit riders' travel patterns over a long period of time. To analyse the long-term changes of transit riders' travel behaviour, the authors define a metric for measuring the similarity between SCD, in this study. Also an improved density-based clustering algorithm, simplified smoothed ordering points to identify the clustering structure (SS-OPTICS), to identify transit rider clusters is proposed. Compared to the original OPTICS, SS-OPTICS needs fewer parameters and has better generalisation ability. Further, the generated clusters are categorised according to their features of regularity and occasionality. Based on the generated clusters and categories, fine- and coarse-grained travel pattern transitions of transit riders over four years from 2010 to 2014 are measured. By combining socioeconomic data of Beijing in the year of 2010 and 2014, the interdependence between stability and mobility of transit riders' travel behaviour is also discussed.
机译:现有研究已广泛使用时空数据来发现各种类型旅行者的出行方式。由自动票价收集系统收集的智能卡数据(SCD)可以反映出公共交通乘客出行方式的一般视图。过境乘员的出行方式在时间和空间上都是动态的,因此很难衡量。但是,很少有现有的研究能够衡量过境骑手在长时间内的出行方式的机动性和稳定性。为了分析过境乘客的出行行为的长期变化,在这项研究中,作者定义了一个度量SCD之间相似性的指标。还提出了一种改进的基于密度的聚类算法,简化了平滑排序点以识别聚类结构(SS-OPTICS),以识别过境乘客聚类。与原始OPTICS相比,SS-OPTICS需要更少的参数,并且具有更好的泛化能力。此外,根据生成的聚类的规律性和偶然性将其分类。根据生成的类和类别,对从2010年到2014年的四年中过境乘客的细粒度和粗粒度旅行模式转变进行了测量。结合北京2010年和2014年的社会经济数据,探讨了公交出行者出行行为的稳定性和机动性之间的相互依存关系。

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