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Review of Economic Studies Vol. 77 No. 2 2010

Generalized Non-Parametric Deconvolution with an Application to Earnings Dynamics

Stéphane Bonhomme1; Jean–Marc Robin2,3

1 Centro de Estudios Monetarios y Financieros · 2 University College London · 3 Paris School of Economics

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Abstract

In this paper, we construct a non-parametric estimator of the distributions of latent factors in linear independent multi-factor models under the assumption that factor loadings are known. Our approach allows estimation of the distributions of up to L(L+ 1)/2 factors given L measurements. The estimator uses empirical characteristic functions, like many available deconvolution estimators. We show that it is consistent, and derive asymptotic convergence rates. Monte Carlo simulations show good finite-sample performance, less so if distributions are highly skewed or leptokurtic. We finally apply the generalized deconvolution procedure to decompose individual log earnings from the panel study of income dynamics (PSID) into permanent and transitory components.

DOI
10.1111/j.1467-937x.2009.00577.x
Volume
77
Issue
2
Pages
491-533
Language
en
Sources
bibtex:phds-export.bib openalex crossref

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