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Adaptive Safety Nets for Rural Africa : Drought-Sensitive Targeting with Sparse Data

Author

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  • Baez,Javier E.
  • Kshirsagar,Varun
  • Skoufias,Emmanuel

Abstract

This paper combines remote-sensed data and individual child-, mother-, and household-level data from the Demographic and Health Surveys for five countries in Sub-Saharan Africa (Malawi, Tanzania, Mozambique, Zambia, and Zimbabwe) to design a prototype drought-contingent targeting framework that may be used in scarce-data contexts. To accomplish this, the paper: (i) develops simple and easy-to-communicate measures of drought shocks; (ii) shows that droughts have a large impact on child stunting in these five countries -- comparable, in size, to the effects of mother's illiteracy and a fall to a lower wealth quintile; and (iii) shows that, in this context, decision trees and logistic regressions predict stunting as accurately (out-of-sample) as machine learning methods that are not interpretable. Taken together, the analysis lends support to the idea that a data-driven approach may contribute to the design of policies that mitigate the impact of climate change on the world's most vulnerable populations.

Suggested Citation

  • Baez,Javier E. & Kshirsagar,Varun & Skoufias,Emmanuel, 2019. "Adaptive Safety Nets for Rural Africa : Drought-Sensitive Targeting with Sparse Data," Policy Research Working Paper Series 9071, The World Bank.
  • Handle: RePEc:wbk:wbrwps:9071
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    File URL: http://documents.worldbank.org/curated/en/104851575303189267/pdf/Adaptive-Safety-Nets-for-Rural-Africa-Drought-Sensitive-Targeting-with-Sparse-Data.pdf
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    Cited by:

    1. Hernandez, Carlos Ospino & Rigolini, Jamele & Coll-Black, Sarah & Oviedo, Ana Maria, 2023. "Protecting Who? Optimal Social Protection Responses to Shocks with Limited Information," IZA Policy Papers 205, Institute of Labor Economics (IZA).
    2. Linden McBride & Christopher B. Barrett & Christopher Browne & Leiqiu Hu & Yanyan Liu & David S. Matteson & Ying Sun & Jiaming Wen, 2022. "Predicting poverty and malnutrition for targeting, mapping, monitoring, and early warning," Applied Economic Perspectives and Policy, John Wiley & Sons, vol. 44(2), pages 879-892, June.
    3. Yujun Zhou & Erin Lentz & Hope Michelson & Chungmann Kim & Kathy Baylis, 2022. "Machine learning for food security: Principles for transparency and usability," Applied Economic Perspectives and Policy, John Wiley & Sons, vol. 44(2), pages 893-910, June.

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