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Estimation of the distribution of income from survey data, adjusting for compatibility with other sources

机译:估计调查数据的收入分配,并调整与其他来源的兼容性

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摘要

In this paper, we present an approach for the estimation of income distributions, which deals with survey data shortcomings through simultaneous consideration of other statistical sources and through adjustment for compatibility with all of them. We show how our proposal deals both with survey income under-reporting, and with under representation of households with very large incomes, which are known to affect the results of the survey. Our proposal has the purpose of selecting the distributional model that best fits the data from the survey, using a Constrained Pseudo Log-likelihood criterion, and is based on well-established statistical criteria and methods and thus reduces the need for subjective or arbitrary choices. The proposed procedure is applied to Mexican data from the National Survey on Household Income and Expenditure for the year 2012 and from Mexico's System of National Accounts, two sources that produce widely differing results regarding total national household current income. We show that, among all fitted models, a satisfactory explanation is given by a 4-parameter Generalized Beta Type 2 distribution. The chosen distribution has little impact on the official poverty measurement. The Gini coefficient, however, reaches a value as high as 0.803.
机译:在本文中,我们提出了一种估计收入分配的方法,该方法通过同时考虑其他统计来源并通过调整与所有统计来源的兼容性来处理调查数据的不足。我们展示了我们的提案如何处理报告收入不足的报告以及收入很高的家庭的代表性不足的问题,这些收入已知会影响调查结果。我们的建议的目的是使用约束伪对数似然准则,选择最适合调查数据的分布模型,并基于完善的统计准则和方法,从而减少主观或任意选择的需求。拟议的程序适用于2012年全国家庭收支调查和墨西哥国民账户体系中的墨西哥数据,这两个数据来源对国民家庭当期总收入产生了截然不同的结果。我们显示,在所有拟合模型中,通过4参数广义Beta 2型分布给出了令人满意的解释。选择的分配方式对官方贫困评估几乎没有影响。但是,基尼系数高达0.803。

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