Spatially Explicit Population Projections: The case of Copenhagen, Denmark

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Abstract

Cities expand rapidly with international migration significantly contributing to urban growth and urban population change. However, cities miss out on a great opportunity of reclaiming valuable knowledge on future population distribution due to the lack of established tools and methodologies to project where it is more likely for people of specific socio-demographic groups to set up home. The present work suggests that spatially explicit projections can play a significant role as a tool for urban planning and for managing diversity creatively, especially when a combination of social, demographic and topographic data is utilized. Machine learning techniques have demonstrated capabilities to capture relationships among this plethora of urban features to estimate future population distribution. We present a flexible, ML-based methodology for high-resolution gridded population projections by demographic characteristics, and specifically by region of origin, for the capital region of Copenhagen, Denmark, by combining various socio-demographic and topographic input layers.
Original languageEnglish
Title of host publication24th AGILE Conference on Geographic Information Science
EditorsP. Partsinevelos, P. Kyriakidis, M. Kavouras
Number of pages6
PublisherCopernicus Publications
Publication date2021
DOIs
Publication statusPublished - 2021
Event24th AGILE Conference on Geographic Information Science - Virtual
Duration: 8 Jun 202111 Jun 2021
https://agile-online.org/conference-2021

Conference

Conference24th AGILE Conference on Geographic Information Science
LocationVirtual
Period08/06/202111/06/2021
Internet address
SeriesAGILE GIScience
Volume2

Keywords

  • Migration
  • Spatial Projections
  • Population Change
  • Machine Learning
  • Convolution Neural Network

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