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Finite sample evidence on the performance of stochastic frontier models using panel data
Authors:Byeong-Ho Gong  Robin C. Sickles
Affiliation:(1) Korean Research Institute for Human Settlements, USA;(2) Department of Economics, Rice University, PO Box 1892, 77251 Houston, Texas
Abstract:Most stochastic frontier models have focused on estimating average productive efficiency across all firms. The failure to estimate firm-specific effiicency has been regarded as a major limitation of previous stochastic frontier models. In this paper, we measure firm-level efficiency using panel data, and examine its finite sample distribution over a wide range of the parameter and model space. We also investigate the performance of the stochastic frontier approach using three estimators: maximum likelihood, generalized least squares and dummy variables (or the within estimator). Our results indicate that the performance of the stochastic frontier approach is sensitive to the form of the underlying technology and its complexity. The results appear to be quite stable across estimators. The within estimatoris preferred, however, because of weak assumptions and relative computational ease.The refereeing process of this paper was handled through J. van den Broeck.
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