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Semi-automatic mapping of pre-census enumeration areas and population sampling frames

Author

Listed:
  • Sarchil Qader

    (University of Southampton
    University of Sulaimani)

  • Veronique Lefebvre

    (Flowminder Foundation)

  • Andrew Tatem

    (University of Southampton
    Flowminder Foundation)

  • Utz Pape

    (World Bank)

  • Kristen Himelein

    (World Bank)

  • Amy Ninneman

    (Flowminder Foundation)

  • Linus Bengtsson

    (Flowminder Foundation)

  • Tomas Bird

    (Flowminder Foundation
    Memorial University of Newfoundland)

Abstract

Enumeration Areas (EAs) are the operational geographic units for the collection and dissemination of census data and are often used as a national sampling frame for various types of surveys. In many poor or conflict-affected countries, EA demarcations are incomplete, outdated, or missing. Even for countries that are stable and prosperous, creating and updating EAs is one of the most challenging yet essential tasks in the preparation for a national census. Commonly, EAs are created by manually digitising small geographic units on high-resolution satellite imagery or physically walking the boundaries of units, both of which are highly time, cost, and labour intensive. In addition, creating EAs requires considering population and area size within each unit. This is an optimisation problem that can best be solved by a computer. Here, for the first time, we produce a semi-automatic mapping of pre-defined census EAs based on high-resolution gridded population and settlement datasets and using publicly available natural and administrative boundaries. We demonstrate the approach in generating rural EAs for Somalia where such mapping is not existent. In addition, we compare our automated approach against manually digitised EAs created in urban areas of Mogadishu and Hargeysa. Our semi-automatically generated EAs are consistent with standard EAs, including having identifiable boundaries for field teams to follow on the ground, and appropriate sizing and population for coverage by an enumerator. Furthermore, our semi-automated urban EAs have no gaps, in contrast, to manually drawn urban EAs. Our work shows the time, labour and cost-saving value of automated EA delineation and points to the potential for broadly available tools suitable for low-income and data-poor settings but applicable to potentially wider contexts.

Suggested Citation

  • Sarchil Qader & Veronique Lefebvre & Andrew Tatem & Utz Pape & Kristen Himelein & Amy Ninneman & Linus Bengtsson & Tomas Bird, 2021. "Semi-automatic mapping of pre-census enumeration areas and population sampling frames," Palgrave Communications, Palgrave Macmillan, vol. 8(1), pages 1-14, December.
  • Handle: RePEc:pal:palcom:v:8:y:2021:i:1:d:10.1057_s41599-020-00670-0
    DOI: 10.1057/s41599-020-00670-0
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    References listed on IDEAS

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    1. Naresh Kumar, 2007. "Spatial Sampling Design for a Demographic and Health Survey," Population Research and Policy Review, Springer;Southern Demographic Association (SDA), vol. 26(5), pages 581-599, December.
    2. Juan C. Duque & Luc Anselin & Sergio J. Rey, 2012. "The Max-P-Regions Problem," Journal of Regional Science, Wiley Blackwell, vol. 52(3), pages 397-419, August.
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    1. Bijak Jakub & Bryant Johan & Gołata Elżbieta & Smallwood Steve, 2021. "Preface," Journal of Official Statistics, Sciendo, vol. 37(3), pages 533-541, September.

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