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Spatial Poverty Mapping×Poverty Mapping (Small-Area Estimation)×
OborDevelopment StudiesDevelopment Studies
RodinaProcess / pipelineProcess / pipeline
Rok vzniku20072003
TvůrceWorld Bank poverty-mapping programme; Bedi, Coudouel & SimlerChris Elbers, Jean O. Lanjouw & Peter Lanjouw
TypSpatial-statistical and GIS method for analysing poverty distributionCensus-survey small-area poverty estimation method
Původní zdrojHenderson, J. V., Storeygard, A., & Weil, D. N. (2012). Measuring Economic Growth from Outer Space. American Economic Review, 102(2), 994-1028. DOI ↗Elbers, C., Lanjouw, J. O., & Lanjouw, P. (2003). Micro-Level Estimation of Poverty and Inequality. Econometrica, 71(1), 355-364. DOI ↗
Další názvyPoverty mapping, Geographic targeting, Poverty maps, Spatial poverty analysisELL Method, Poverty Mapping, Census-Survey Poverty Estimation, Small-Area Poverty Estimation
Příbuzné44
ShrnutíSpatial poverty mapping visualises and analyses the geographic distribution of poverty using geographic information systems and spatial statistics, turning poverty estimates into maps that reveal where the poor live at fine spatial scales. It combines small-area poverty estimates with spatial covariates — remote-sensing data, night-time lights, accessibility, and terrain — examines spatial patterns and autocorrelation, and supports the geographic targeting of resources. Consolidated through the World Bank programme documented by Bedi, Coudouel, and Simler and energised by data such as the satellite night-lights series analysed by Henderson, Storeygard, and Weil, it has become a standard tool for evidence-based geographic targeting.ELL poverty mapping, named after Chris Elbers, Jean Lanjouw, and Peter Lanjouw, is a small-area estimation method that produces poverty and inequality estimates for geographic units far smaller than a household survey can support on its own. It combines two data sources: a detailed household survey that measures consumption but covers too few households per locality, and a population census that covers everyone but does not measure consumption. The method estimates a model of consumption on variables common to both, imputes consumption into the census, and simulates to generate poverty estimates — with statistically valid standard errors — for districts, communes, or even villages, which are then drawn as poverty maps.
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ScholarGatePorovnat metody: Spatial Poverty Mapping · Poverty Mapping (Small-Area Estimation). Získáno 2026-06-24 z https://scholargate.app/cs/compare