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High-Resolution Poverty Maps in Sub-Saharan Africa

Domaine:

socioeconomicgeospatial

Type de record:

datasetpaper
Créateur:
LeeBra
Éditeur:
arXiv
Hôte:avatar
Up-to-date poverty maps are an important tool for policy makers, but until now, have been prohibitively expensive to produce. We propose a generalizable prediction methodology to produce poverty maps at the village level using geospatial data and machine learning algorithms. We tested the proposed method for 25 Sub-Saharan African countries and validated them against survey data. The proposed method can increase the validity of both single country and cross-country estimations leading to higher precision in poverty maps of 44 Sub-Saharan African countries than previously available. More importantly, our cross-country estimation enables the creation of poverty maps when it is not practical or cost-effective to field new national household surveys, as is the case with many low- and middle-income countries. Changed an author's affiliation, updated the narrowing method for DHS clusters leading to slight changes to all validation results

Visit

doi.orgarxiv.org

Tags

Computers and Society (cs.CY)Machine Learning (cs.LG)General Economics (econ.GN)FOS: Computer and information sciencesFOS: Computer and information sciencesFOS: Economics and businessFOS: Economics and business

Licenses

arXiv.org perpetual, non-exclusive licensehttp://arxiv.org/licenses/nonexclusive-distrib/1.0/

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