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Statistical patterns of human mobility in emerging Bicycle Sharing Systems

机译:新兴自行车共享系统中的人类流动统计模式

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摘要

The emerging Bicycle Sharing System (BSS) provides a new social microscope that allows us to "photograph" the main aspects of the society and to create a comprehensive picture of human mobility behavior in this new medium. BSS has been deployed in many major cities around the world as a short-distance trip supplement for public transportations and private vehicles. A unique value of the bike flow data generated by these BSSs is to understand the human mobility in a short-distance trip. This understanding of the population on short-distance trip is lacking, limiting our capacity in management and operation of BSSs. Many existing operations research and management methods for BSS impose assumptions that emphasize statistical simplicity and homogeneity. Therefore, a deep understanding of the statistical patterns embedded in the bike flow data is an urgent and overriding issue to inform decision-makings for a variety of problems including traffic prediction, station placement, bike reallocation, and anomaly detection. In this paper, we aim to conduct a comprehensive analysis of the bike flow data using two large datasets collected in Chicago and Hangzhou over months. Our analysis reveals intrinsic structures of the bike flow data and regularities in both spatial and temporal scales such as a community structure and a taxonomy of the eigen-bike-flows.
机译:新兴的自行车共享系统(BSS)提供了一种新的社交显微镜,使我们能够“拍摄”社会的主要方面,并在这个新媒体中创造综合人类流动行为的形式。 BSS已于全球许多主要城市部署,作为公共交通和私人车辆的短途旅行补充。这些BSSS产生的自行车流数据的独特价值是了解在短距离之旅中的人类移动性。这种对短途旅行人口的理解缺乏,限制了我们对BSSS的管理和运营的能力。 BSS的许多现有运营研究和管理方法强调强调统计简单性和均匀性的假设。因此,对嵌入在自行车流数据中的统计模式的深刻理解是一种紧急和覆盖的问题,可以为决策制备通知包括交通预测,站放置,自行车重新分配和异常检测的各种问题。在本文中,我们的目标是使用芝加哥和杭州收集的两个大型数据集进行全面分析自行车流量数据。我们的分析揭示了空间和时间尺度的自行车流量数据和规律的内在结构,例如群落结构和特征自行车流动的分类。

著录项

  • 来源
    《Journal of land use science》 |2018年第3期|共16页
  • 作者单位

    Xi An Jiao Tong Univ Dept Informat Management &

    E Business Ctr Data Sci &

    Informat Qual Xian Shaanxi Peoples R China;

    Xi An Jiao Tong Univ Dept Informat Management &

    E Business Ctr Data Sci &

    Informat Qual Xian Shaanxi Peoples R China;

    Renmin Univ China Sch Stat Ctr Appl Stat Beijing Peoples R China;

    Univ Washington Dept Ind &

    Syst Engn Seattle WA 98195 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 地球物理学;
  • 关键词

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