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Partial multidimensional inequality orderings

机译:多维多维不等式排序

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The paper investigates how comparisons of multivariate inequality can be made robust to varying the intensity of focus on the share of the population that are more relatively deprived. It is in the spirit of Sen (1970)'s partial orderings and follows the dominance approach to making inequality comparisons. By focusing on those below a multidimensional inequality "frontier", we are able to reconcile the literature on multivariate relative poverty and multivariate inequality. Some existing approaches to multivariate inequality actually reduce the distributional analysis to a univariate problem, either by using a utility function first to aggregate an individual's multiple dimensions of well-being, or by applying a univariate inequality analysis to each dimension independently. One of our innovations is that unlike previous approaches, the distribution of relative well-being in one dimension is allowed to affect how other dimensions influence overall inequality. Our methods are also robust to choices of individual "utility" or aggregation functions. We apply our approach to data from India and Mexico to show inter alia how dependence between dimensions of well-being can influence relative poverty and inequality comparisons between two populations.
机译:本文研究了如何使多元不等式的比较稳健,从而改变人们对贫困程度相对较高的人群的关注程度。它遵循了Sen(1970)的部分排序的精神,并遵循主导方法进行不平等比较。通过关注多维不平等“边界”之下的那些,我们能够调和有关多元相对贫困和多元不平等的文献。一些现有的多元不平等方法实际上是通过将效用函数首先用于汇总一个人的多个方面的幸福感,或者通过对每个维度独立地应用一个多元不平等分析来将分布分析简化为一个单变量问题。我们的创新之一是,与以前的方法不同,一个维度的相对幸福感分布可以影响其他维度如何影响整体不平等。我们的方法对于选择单个“效用”或聚合函数也很可靠。我们将我们的方法应用于来自印度和墨西哥的数据,以尤其显示幸福感之间的依存关系如何影响两个人口之间的相对贫困和不平等比较。

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