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Causal inference targeting a concentration index for studies of health inequalities
Umeå University, Faculty of Social Sciences, Umeå School of Business and Economics (USBE), Statistics.ORCID iD: 0000-0003-0633-0177
Umeå University, Faculty of Social Sciences, Umeå School of Business and Economics (USBE), Statistics.ORCID iD: 0000-0003-3187-1987
Umeå University, Faculty of Medicine, Department of Epidemiology and Global Health.ORCID iD: 0000-0002-3972-5362
2026 (English)In: Biometrics, ISSN 0006-341X, E-ISSN 1541-0420, Vol. 82, no 2, article id ujag082Article in journal (Refereed) Published
Abstract [en]

A concentration index, a standardised covariance between a health variable and relative income ranks, is often used to quantify income-related health inequalities. There is a lack of formal approach to study the effect of an exposure, e.g., education, on such measures of inequality. In this paper we contribute by filling this gap and developing the necessary theory and method. Thus, we define a counterfactual concentration index for different levels of an exposure. We give conditions for the identification of this complex estimand, and then deduce its efficient influence function. This allows us to propose estimators, which are regular asymptotic linear under certain conditions. In particular, we show that these estimators are (Formula presented) -consistent and asymptotically normal, as well as locally efficient. The implementation of the estimators is based on the fit of several nuisance functions. The estimators proposed have rate robustness properties allowing for convergence rates slower than (Formula presented) -rate for some of the nuisance function fits. The relevance of the asymptotic results for finite samples is studied with simulation experiments. We also present a case study of the effect of education on income-related health inequalities for a Swedish cohort.

Place, publisher, year, edition, pages
Oxford University Press, 2026. Vol. 82, no 2, article id ujag082
Keywords [en]
efficient influence function, Gini index, machine learning, rate robustness, record linked data, semiparametric efficiency bound
National Category
Probability Theory and Statistics
Identifiers
URN: urn:nbn:se:umu:diva-253454DOI: 10.1093/biomtc/ujag082ISI: 001767111100001PubMedID: 42145179Scopus ID: 2-s2.0-105039012758OAI: oai:DiVA.org:umu-253454DiVA, id: diva2:2062420
Funder
Marianne and Marcus Wallenberg Foundation, MMW 2021.0020Available from: 2026-05-26 Created: 2026-05-26 Last updated: 2026-05-26Bibliographically approved

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Mohammad, Ghasempourde Luna, XavierGustafsson, Per E

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