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A Review Of Stochastic Dominance Methods For Poverty Analysis

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  • César García‐Gómez
  • Ana Pérez
  • Mercedes Prieto‐Alaiz

Abstract

Stochastic dominance techniques have been mainly employed in poverty analyses to overcome what it is called the multiplicity of poverty indices problem. Moreover, in the multidimensional context, stochastic dominance techniques capture the possible relationships between the dimensions of poverty as they rely upon their joint distribution, unlike most multidimensional poverty indices, which are only based on marginal distributions. In this paper, we first review the general definition of unidimensional stochastic dominance and its relationship with poverty orderings. Then we focus on the conditions of multivariate stochastic dominance and their relationship with multidimensional poverty orderings, highlighting the additional difficulties that the multivariate setting involves. In both cases, we focus our discussion on first‐ and second‐order dominance, though some guidelines on higher order dominance are also mentioned. We also present an overview of some relevant empirical applications of these methods that can be found in the literature in both univariate and multivariate contexts.

Suggested Citation

  • César García‐Gómez & Ana Pérez & Mercedes Prieto‐Alaiz, 2019. "A Review Of Stochastic Dominance Methods For Poverty Analysis," Journal of Economic Surveys, Wiley Blackwell, vol. 33(5), pages 1437-1462, December.
  • Handle: RePEc:bla:jecsur:v:33:y:2019:i:5:p:1437-1462
    DOI: 10.1111/joes.12334
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    Cited by:

    1. Tahsin Mehdi, 2020. "Testing for Stochastic Dominance up to a Common Relative Poverty Line," Econometrics, MDPI, vol. 8(1), pages 1-9, February.

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