An empirical investigation of the box-cox model and a nonlinear least squares alternative |
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Authors: | Ernst R. Berndt Mark H. Showalter Jeffrey M. Wooldridge |
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Affiliation: | a Sloan School of Management, MIT, Combridgeb Department of Economics, Brigham Young University, Provo, UTc Department of Economics, Michigan State University, East Lansing |
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Abstract: | ![]() In this paper we present a generalized functional form estimator, recently developed by jeffrey Wooldridge; and then we compare it empirically to the popular Box-Cox (BC) estimator using three data sets. We begin by briefly reviewing the drawbacks of the BC estimator. We Then introduce the nonlinear lest squares (NLS) alternative of Wooldridge which retains the desirable qualities of the BC estimator without the associated theoretical problems. We continue by applying both the BC and the NLS models to data from three classic hedonic regression studies and then compare the estimation resuts-point estimates, inferences and fitted values. The estimations include a wage rate equation, and two computer hedonic regression equations, one using data from a classic study by Gregory Chow and the other using an IBM data set that formed the basis of the new official BLS computer price index. |
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Keywords: | Functional form estimation Box-Cox Nonlinear least squares hedonic estimation |
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