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Inherited Inequality: A General Framework and an Application to South Africa

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  • Brunori, Paolo
  • Ferreira, Francisco H. G.
  • Salas-Rojo, Pedro

Abstract

Scholars have sought to quantify the extent of inequality which is inherited from past generations in many different ways, including a large body of work on intergenerational mobility and inequality of opportunity. This paper makes three contributions to that broad literature. First, we show that many of the most prominent approaches to measuring mobility or inequality of opportunity fit within a general framework which involves, as a first step, a calculation of the extent to which inherited circumstances can predict current incomes. The importance of prediction has led to recent applications of machine learning tools to solve the model selection challenge in the presence of competing upward and downward biases. Our second contribution is to apply transformation trees to the computation of inequality of opportunity. Because the algorithm is built on a likelihood maximization that involves splitting the sample into groups with the most salient differences between their conditional cumulative distributions, it is particularly well-suited to measuring ex-post inequality of opportunity, following Roemer (1998). Our third contribution is to apply the method to data from South Africa, arguably the world’s most unequal country, and find that almost three-quarters of its current inequality is inherited from predetermined circumstances, with race playing the largest role, but parental background also making an important contribution. (Stone Center on Socio-Economic Inequality Working Paper)

Suggested Citation

  • Brunori, Paolo & Ferreira, Francisco H. G. & Salas-Rojo, Pedro, 2024. "Inherited Inequality: A General Framework and an Application to South Africa," SocArXiv rgq7t, Center for Open Science.
  • Handle: RePEc:osf:socarx:rgq7t
    DOI: 10.31219/osf.io/rgq7t
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    References listed on IDEAS

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    1. Paolo Brunori & Alain Trannoy & Caterina Francesca Guidi, 2021. "Ranking populations in terms of inequality of health opportunity: A flexible latent type approach," Health Economics, John Wiley & Sons, Ltd., vol. 30(2), pages 358-383, February.
    2. Judith Niehues & Andreas Peichl, 2014. "Upper bounds of inequality of opportunity: theory and evidence for Germany and the US," Social Choice and Welfare, Springer;The Society for Social Choice and Welfare, vol. 43(1), pages 73-99, June.
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    4. Vincenzo Carrieri & Apostolos Davillas & Andrew M. Jones, 2020. "A latent class approach to inequity in health using biomarker data," Health Economics, John Wiley & Sons, Ltd., vol. 29(7), pages 808-826, July.
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    Cited by:

    1. Paolo Brunori & Francisco H.G. Ferreira & Guido Neidhöfer, 2023. "Inequality of opportunity and intergenerational persistence in Latin America," WIDER Working Paper Series wp-2023-39, World Institute for Development Economic Research (UNU-WIDER).

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    More about this item

    JEL classification:

    • D31 - Microeconomics - - Distribution - - - Personal Income and Wealth Distribution
    • D63 - Microeconomics - - Welfare Economics - - - Equity, Justice, Inequality, and Other Normative Criteria and Measurement
    • J62 - Labor and Demographic Economics - - Mobility, Unemployment, Vacancies, and Immigrant Workers - - - Job, Occupational and Intergenerational Mobility; Promotion

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