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Statistical inference for testing inequality indices with dependent samples

机译:用相关样本检验不平等指数的统计推断

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摘要

This paper develops asymptotically distribution-free inference for testing inequality indices with dependent samples. It considers the interpolated Gini coefficient and the generalized entropy class, which includes several commonly used inequality indices. We first establish inference tests for changes in inequality indices with completely dependent samples (i.e., matched pairs) and then generalize the inference procedures to cases with partially dependent samples. The effects of sample dependency on standard errors of inequality changes are examined through simulation studies as well as through applications to the CPS and PSID data.
机译:本文提出了渐近无分布推论,以检验依赖样本的不平等指数。它考虑了插值的基尼系数和广义熵类别,其中包括几个常用的不平等指数。我们首先针对完全依赖样本(即匹配对)的不平等指数的变化建立推理测试,然后将推理过程推广到部分依赖样本的情况下。通过模拟研究以及对CPS和PSID数据的应用,研究了样本依赖性对不等式变化的标准误差的影响。

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