Robust Standard Errors in Transformed Likelihood Estimation of Dynamic Panel Data Models

51 Pages Posted: 16 Jun 2012

See all articles by Kazuhiko Hayakawa

Kazuhiko Hayakawa

Hiroshima University

M. Hashem Pesaran

University of Southern California - Department of Economics

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Abstract

This paper extends the transformed maximum likelihood approach for estimation of dynamic panel data models by Hsiao, Pesaran, and Tahmiscioglu (2002) to the case where the errors are crosssectionally heteroskedastic. This extension is not trivial due to the incidental parameters problem that arises, and its implications for estimation and inference. We approach the problem by working with a mis-specified homoskedastic model. It is shown that the transformed maximum likelihood estimator continues to be consistent even in the presence of cross-sectional heteroskedasticity. We also obtain standard errors that are robust to cross-sectional heteroskedasticity of unknown form. By means of Monte Carlo simulation, we investigate the finite sample behavior of the transformed maximum likelihood estimator and compare it with various GMM estimators proposed in the literature. Simulation results reveal that, in terms of median absolute errors and accuracy of inference, the transformed likelihood estimator outperforms the GMM estimators in almost all cases.

Keywords: dynamic panels, cross-sectional heteroskedasticity, Monte Carlo simulation, GMM estimation

JEL Classification: C12, C13, C23

Suggested Citation

Hayakawa, Kazuhiko and Pesaran, M. Hashem, Robust Standard Errors in Transformed Likelihood Estimation of Dynamic Panel Data Models. IZA Discussion Paper No. 6583, Available at SSRN: https://ssrn.com/abstract=2085090 or http://dx.doi.org/10.2139/ssrn.2085090

Kazuhiko Hayakawa (Contact Author)

Hiroshima University ( email )

Japan

M. Hashem Pesaran

University of Southern California - Department of Economics ( email )

3620 South Vermont Ave. Kaprielian (KAP) Hall 300
Los Angeles, CA 90089
United States

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