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Characterizing the urban spatial structure using taxi trip big data and implications for urban planning

机译:使用出租车旅行大数据和城市规划影响的城市空间结构。

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摘要

Urban spatial structure is an important feature for assessing the effects of urban planning.Quantifying an urban spatial structure cannot only help in identifying the problems with current planning but also provide a basic reference for future adjustments.Evaluation of spatial structure is a difficult task for planners and researchers and this has been usually carried out by comparing different land use structures.However,these methods cannot efficiently reflect the influence of human activities.With the wide application of big data,analyzing data on human travel behavior has increasingly been carried out to reveal the relationship between urban spatial structure and urban planning.In this study,we constructed a human-activity space network using the taxi trip big data.Clustering at different scales revealed the hierarchy and redundancy of the spatial structure for assessing the appropriateness and shortcomings of urban planning.This method was applied to a case study based on one-month taxi trip data of Dongguan City.Existing urban spatial structures at different scales were retrieved and utilized to assess the effectiveness of the master plan designed for 2000 to 2015 and 2008 to 2020,which can help identify the limitations and improvements in the spatial structure designed in these two versions of the master plan.We also evaluated the potential effect of the master plan designed for 2016 to 2035 by providing a reference for reconstructing and optimizing future urban spatial structure.The analysis demonstrated that the taxi trip data are important big data on social spatial perception,and taxi data should be used for evaluating spatial structures in future urban planning.
机译:城市空间结构是评估城市规划效果的重要特征。Quantify城市空间结构只能有助于确定当前规划的问题,但也为未来调整提供了基本参考。空间结构评估是针对规划者的艰巨任务和研究人员,这通常通过比较不同的土地使用结构来进行。然而,这些方法无法有效地反映人类活动的影响。在广泛应用的大数据中,越来越多地进行了对人类旅行行为的数据来揭示城市空间结构与城市规划之间的关系。本研究,使用出租车行程大数据构建了一个人类活动空间网络。不同尺度的集团揭示了评估城市适当性和缺点的空间结构的层次和冗余策划。本方法应用于基于one-mont的案例研究HAT TAXII TAIN Dongguan City的行程数据。检索不同尺度的城市空间结构,并利用了旨在为2000年至2015年和2008年至2020年设计的总体计划的有效性,这有助于确定所设计的空间结构中的局限性和改进。在这两个版本的主计划中,我们还通过为重建和优化未来城市空间结构提供参考来评估2016年至2035年的主计划的潜在效果。分析表明出租车旅行数据是重要的大数据社会空间感知和出租车数据应用于评估未来城市规划中的空间结构。

著录项

  • 来源
    《地球科学前沿:英文版》 |2021年第1期|P.70-80|共11页
  • 作者单位

    School of Geography and Planning Guangdong Key Laboratory for Urbanization and Geo-simulation SunYat-sen University Guangzhou 510275 China;

    School of Geography and Planning Guangdong Key Laboratory for Urbanization and Geo-simulation SunYat-sen University Guangzhou 510275 China;

    School of Geographic Sciences Key Lab.of Geographic Information Science(Ministry of Education) East China Normal University Shanghai 200241 China;

    School of Architecture and Urban Planning Guangdong University of Technology Guangzhou 510090 China;

    Guangdong Guodi Planning Science Technology Co. ltd Guangzhou 510275 China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 chi
  • 中图分类 地下建筑;
  • 关键词

    urban structure; taxi GPS data; complex networks; community management;

    机译:城市结构;出租车GPS数据;复杂网络;社区管理;
  • 入库时间 2024-01-27 11:45:18
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