[Séminaire Caen] Linear Regressions with Combined Data

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[Séminaire Caen] Linear Regressions with Combined Data

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lundi 09 novembre 2026 à 14:15 Ajouter à mon agenda
UFR SEGGAT - MRSH Université de Caen Normandie
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  • lun 09 novembre 2026 · 14:15 – 15:45

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Abstract:
We study linear regressions in a context where the outcome of interest and some of the covariates are observed in two different datasets that cannot be matched. Traditional approaches obtain point identification by relying, often implicitly, on exclusion restrictions. We show that without such restrictions, coefficients of interest can still be partially identified, with the sharp bounds taking a simple form. We obtain tighter bounds when variables observed in both datasets, but not included in the regression of interest, are available, even if these variables are not subject to specific restrictions. We develop computationally simple and asymptotically normal estimators of the bounds. Finally, we apply our methodology to estimate racial disparities in patent approval rates and to evaluate the effect of patience and risk-taking on educational performance.
Joint with Christophe Gaillac, University of Geneva and Arnaud Maurel , Duke University

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MRSH 027, UFR SEGGAT

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