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Poverty comparisons with absolute poverty lines estimated from survey data

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  • Simler. Kenneth R.
  • Arndt, Channing

Abstract

"The objective of measuring poverty is usually to make comparisons over time or between two or more groups. Common statistical inference methods are used to determine whether an apparent difference in measured poverty is statistically significant. Studies of relative poverty have long recognized that when the poverty line is calculated from sample survey data, both the variance of the poverty line and the variance of the welfare metric contribute to the variance of the poverty estimate. In contrast, studies using absolute poverty lines have ignored the poverty line variance, even when the poverty lines are estimated from sample survey data. Including the poverty line variance could either reduce or increase the precision of poverty estimates, depending on the specific characteristics of the data. This paper presents a general procedure for estimating the standard error of poverty measures when the poverty line is estimated from survey data. Based on bootstrap methods, the approach can be used for a wide range of poverty measures and methods for estimating poverty lines. The method is applied to recent household survey data from Mozambique. When the sampling variance of the poverty line is taken into account, the estimated standard errors of Foster-Greer- Thorbecke and Watts poverty measures increase by 15 to 30 percent at the national level, with considerable variability at lower levels of aggregation." -- Authors' Abstract

Suggested Citation

  • Simler. Kenneth R. & Arndt, Channing, 2006. "Poverty comparisons with absolute poverty lines estimated from survey data," FCND discussion papers 211, International Food Policy Research Institute (IFPRI).
  • Handle: RePEc:fpr:fcnddp:211
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    1. Jones, D.F. & Treloar, R. & Ouelhadj, D. & Glampedakis, A. & Bartmeyer, P., 2024. "Incorporation of poverty principles into goal programming," Omega, Elsevier, vol. 127(C).
    2. Saeed Solaymani & Fatimah Kari & Roza Hazly Zakaria, 2014. "Evaluating the Role of Subsidy Reform in Addressing Poverty Levels in Malaysia: A CGE Poverty Framework," Journal of Development Studies, Taylor & Francis Journals, vol. 50(4), pages 556-569, April.
    3. World Bank, 2010. "Paraguay Poverty Assessment : Determinants and Challenges for Poverty Reduction [Paraguay - Estudio de pobreza : determinantes y desafíos para la reduccion de la pobreza]," World Bank Publications - Reports 12585, The World Bank Group.
    4. Karl Pauw & Ulrik Beck & Richard Mussa, 2014. "Did Rapid Smallholder-Led Agricultural Growth Fail to Reduce Rural Poverty?: Making Sense of Malawi's Poverty Puzzle," WIDER Working Paper Series wp-2014-123, World Institute for Development Economic Research (UNU-WIDER).
    5. Channing Arndt & Kenneth R. Simler, 2007. "Consistent poverty comparisons and inference," Agricultural Economics, International Association of Agricultural Economists, vol. 37(2‐3), pages 133-139, September.
    6. Tomson Ogwang, 2022. "The Foster–Greer–Thorbecke Poverty Measures Reveal More," Social Indicators Research: An International and Interdisciplinary Journal for Quality-of-Life Measurement, Springer, vol. 164(3), pages 1481-1503, December.
    7. Pauw, Karl & Beck, Ulrik & Mussa, Richard, 2014. "Did rapid smallholder-led agricultural growth fail to reduce rural poverty? Making sense of Malawi's poverty puzzle," WIDER Working Paper Series 123, World Institute for Development Economic Research (UNU-WIDER).
    8. Arbex Marcelo & Mattos Enlinson & Trudeau Christian, 2012. "Poverty, Informality and the Optimal General Income Tax Policy," The B.E. Journal of Economic Analysis & Policy, De Gruyter, vol. 12(1), pages 1-22, July.
    9. Marcelo Arbex & Enlinson Mattos, 2010. "Poverty and the Optimal General Income Tax-cum-Audit Policy," Working Papers 02-2010, Universidade de São Paulo, Faculdade de Economia, Administração e Contabilidade de Ribeirão Preto.

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