Extremal Quantile Regressions for Selection Models and the Black-White Wage Gap

dc.contributor.author

D'Haultfœuille, X

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Maurel, AP

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Zhang, Y

dc.date.accessioned

2016-12-06T15:39:29Z

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2014-06-01

dc.description.abstract

We consider the estimation of a semiparametric location-scale model subject to endogenous selection, in the absence of an instrument or a large support regressor. Identification relies on the independence between the covariates and selection, for arbitrarily large values of the outcome. In this context, we propose a simple estimator, which combines extremal quantile regressions with minimum distance. We establish the asymptotic normality of this estimator by extending previous results on extremal quantile regressions to allow for selection. Finally, we apply our method to estimate the black-white wage gap among males from the NLSY79 and NLSY97. We find that premarket factors such as AFQT and family background characteristics play a key role in explaining the level and evolution of the black-white wage gap.

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66 pages

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https://hdl.handle.net/10161/13191

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Elsevier BV

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Economic Research Initiatives at Duke (ERID)

dc.subject

sample selection models

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extremal quantile regressions

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black-white wage gap

dc.title

Extremal Quantile Regressions for Selection Models and the Black-White Wage Gap

dc.type

Journal article

duke.contributor.orcid

Maurel, AP|0000-0001-6888-1164

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177

pubs.organisational-group

Duke

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Duke Population Research Center

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Duke Population Research Institute

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Economics

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Sanford School of Public Policy

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Trinity College of Arts & Sciences

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