Evaluating and characterizing urban vibrancy using spatial big data: (Record no. 14871)
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Personal name | Huang, Bo |
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Title | Evaluating and characterizing urban vibrancy using spatial big data: |
Sub Title | shanghai as a case study/ |
260 ## - PUBLICATION, DISTRIBUTION, ETC. (IMPRINT) | |
Name of publisher, distributor, etc | Sage, |
Date of publication, distribution, etc | 2020. |
300 ## - PHYSICAL DESCRIPTION | |
Pages | Vol. 47, Issue 9, 2020, ( 1543–1559 p.) |
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Summary, etc | Although people may recognize urban vibrancy when they see or sense it, developing direct and comprehensive measures of urban vibrancy remains a challenge. In the context of intense global competition, there is an increased realization that urban vibrancy is vital to the social and economic sustainability of cities. Such vibrancy may be significantly shaped by the urban built environment, yet we know little about the close connections between vibrancy and urban built environments. Empowered by newly available sources of spatial big data, which provide enormous amounts of information on both human dynamics and the built environment, this paper proposes a framework for evaluating and characterizing urban vibrancy. Thus far, vibrancy measures have mostly used single-source data that hardly reflect the multifaceted manifestations of urban vibrancy. Therefore, we propose a more comprehensive measure of urban vibrancy, extracted as the common latent factor from multiple surface attributes. Using the proposed framework, we evaluated and mapped the spatial dynamics of vibrancy in Shanghai, a typical large city in post-reform China, and investigated the associations between vibrancy and various urban built environment indicators. The evidence shows that the horizontal built-up density, rather than vertical height, is the leading generator of vibrancy in Shanghai, followed by the density and mixture of urban functions, accessibility, and walkability. In this vein, we contribute to current debates and future planning practices regarding vibrant spaces in large cities. This proposed evaluation framework, equipped with spatial big data, can benefit future urban studies. |
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Added Entry Personal Name | Zhou, Yulun |
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Added Entry Personal Name | Li, Zhigang |
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Added Entry Personal Name | Song, Yimeng |
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Added Entry Personal Name | Cai, Jixuan |
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Added Entry Personal Name | Tu, Wei |
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Host Biblionumber | 8876 |
Host Itemnumber | 17104 |
Place, publisher, and date of publication | London Pion Ltd. 2010 |
Title | Environment and planning B: planning and design (Urban Analytics and City Science) |
International Standard Serial Number | 1472-3417 |
856 ## - ELECTRONIC LOCATION AND ACCESS | |
Uniform Resource Identifier | https://doi.org/10.1177/2399808319828730 |
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Koha item type | E-Journal |
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