2014
DOI: 10.5351/csam.2014.21.5.395
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Dual Generalized Maximum Entropy Estimation for Panel Data Regression Models

Abstract: Data limited, partial, or incomplete are known as an ill-posed problem. If the data with ill-posed problems are analyzed by traditional statistical methods, the results obviously are not reliable and lead to erroneous interpretations. To overcome these problems, we propose a dual generalized maximum entropy (dual GME) estimator for panel data regression models based on an unconstrained dual Lagrange multiplier method. Monte Carlo simulations for panel data regression models with exogeneity, endogeneity, or/and… Show more

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Cited by 4 publications
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References 21 publications
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