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Multisource Open Geospatial Big Data Fusion: Application of the Method to Demarcate Urban Agglomeration Footprints

Author

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  • Nelunika Priyashani

    (Department of Town and Country Planning, University of Moratuwa, Katubedda, Moratuwa 10400, Sri Lanka)

  • Nayomi Kankanamge

    (Department of Town and Country Planning, University of Moratuwa, Katubedda, Moratuwa 10400, Sri Lanka)

  • Tan Yigitcanlar

    (City 4.0 Lab, School of Architecture and Built Environment, Queensland University of Technology, 2 George Street, Brisbane, QLD 4000, Australia)

Abstract

Urban agglomeration is a continuous urban spread and generally comprises a main city at the core and its adjoining growth areas. These agglomerations are studied using different concepts, theories, models, criteria, indices, and approaches, where population distribution and its associated characteristics are mainly used as the main parameters. Given the difficulties in accurately demarcating these agglomerations, novel methods and approaches have emerged in recent years. The use of geospatial big data sources to demarcate urban agglomeration is one of them. This promising method, however, has not yet been studied widely and hence remains an understudied area of research. This study explores using a multisource open geospatial big data fusion approach to demarcate urban agglomeration footprint. The paper uses the Southern Coastal Belt of Sri Lanka as the testbed to demonstrate the capabilities of this novel approach. The methodological approach considers both the urban form and functions related to the parameters of cities in defining urban agglomeration footprint. It employs near-real-time data in defining the urban function-related parameters. The results disclosed that employing urban form and function-related parameters delivers more accurate demarcation outcomes than single parameter use. Hence, the utilization of a multisource geospatial big data fusion approach for the demarcation of urban agglomeration footprint informs urban authorities in developing appropriate policies for managing urban growth.

Suggested Citation

  • Nelunika Priyashani & Nayomi Kankanamge & Tan Yigitcanlar, 2023. "Multisource Open Geospatial Big Data Fusion: Application of the Method to Demarcate Urban Agglomeration Footprints," Land, MDPI, vol. 12(2), pages 1-23, February.
  • Handle: RePEc:gam:jlands:v:12:y:2023:i:2:p:407-:d:1056118
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    References listed on IDEAS

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    1. Jun Zhang & Runni Zhang & Xue Zhang & Xiaodie Yuan, 2023. "Polycentric Spatial Structure Evolution and Influencing Factors of the Kunming–Yuxi Urban Agglomeration: Based on Multisource Big Data Fusion," Land, MDPI, vol. 12(7), pages 1-18, July.
    2. Zaiyu Fan & Zhen Zhong, 2023. "Spatial Morphological Characteristics and Evolution of Policy-Oriented Urban Agglomerations—Take the Yangtze River Middle Reaches Urban Agglomeration as an Example," Sustainability, MDPI, vol. 15(18), pages 1-20, September.

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