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Revealing travel patterns and city structure with taxi trip data

机译:通过出租车旅行数据揭示出行方式和城市结构

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摘要

Delineating travel patterns and city structure has long been a core research topic in transport geography. Different from the physical structure, the city structure beneath the complex travel-flow system shows the inherent connection patterns within the city. On the basis of taxi-trip data from Shanghai, we built spatially embedded networks to model intra-city spatial interactions and to introduce network science methods into the analysis. The community detection method is applied to reveal sub-regional structures, and several network measures are used to examine the properties of sub-regions. Considering the differences between long- and short-distance trips, we reveal a two-level hierarchical polycentric city structure in Shanghai. Further explorations of sub-network structures demonstrate that urban sub-regions have broader internal spatial interactions, while suburban centers are more influential on local traffic. By incorporating the land use of centers from a travel-pattern perspective, we investigate sub-region formation and the interaction patterns of center-local places. This study provides insights into using emerging data sources to reveal travel patterns and city structures, which could potentially aid in developing and applying urban transportation policies. The sub-regional structures revealed in this study are more easily interpreted for transportation-related issues than for other structures, such as administrative divisions.
机译:出行方式和城市结构的描述一直是交通地理学的核心研究主题。与物理结构不同,复​​杂的旅行流程系统下的城市结构显示了城市内部固有的联系方式。根据上海的出租车行程数据,我们构建了空间嵌入式网络,以对城市内部空间相互作用进行建模,并将网络科学方法引入分析中。应用社区检测方法揭示子区域的结构,并使用几种网络措施来检查子区域的属性。考虑到长途旅行和短途旅行之间的差异,我们揭示了上海的两级分层多中心城市结构。对子网络结构的进一步探索表明,城市子区域具有更广泛的内部空间相互作用,而郊区中心对本地流量的影响更大。通过从旅行模式的角度纳入中心的土地利用,我们研究了子区域的形成以及中心与地方之间的相互作用模式。这项研究提供了有关使用新兴数据源揭示出行方式和城市结构的见解,这可能有助于制定和应用城市交通政策。与交通部门相关的问题相比,本研究中揭示的次区域结构比其他结构(例如行政区划)更容易解释。

著录项

  • 来源
    《Journal of Transport Geography》 |2015年第2期|78-90|共13页
  • 作者单位

    Institute of Remote Sensing and Geographical Information Systems, Peking University, Beijing 100871, PR China,Beijing Key Lab of Spatial Information Integration and Its Applications, Peking University, Beijing 100871, PR China;

    Institute of Remote Sensing and Geographical Information Systems, Peking University, Beijing 100871, PR China,Beijing Key Lab of Spatial Information Integration and Its Applications, Peking University, Beijing 100871, PR China;

    Shenzhen Key Laboratory of Urban Planning and Decision Making, Harbin Institute of Technology Shenzhen Graduate School, Shenzhen 518055, PR China;

    Institute of Remote Sensing and Geographical Information Systems, Peking University, Beijing 100871, PR China,Beijing Key Lab of Spatial Information Integration and Its Applications, Peking University, Beijing 100871, PR China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    GPS-enabled taxi data; Travel pattern; Urban structure; Spatially embedded network; Community detection;

    机译:具有GPS功能的出租车数据;出行方式;城市结构;空间嵌入式网络;社区检测;

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