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Particle swarm optimization based Liu-type estimator
Authors:Deniz Inan  Erol Egrioglu  Busenur Sarica  Oykum Esra Askin  Mujgan Tez
Institution:1. Department of Statistics, Marmara University, Istanbul, Turkey;2. Department of Statistics, Giresun University, Giresun, Turkey;3. Department of Statistics, Yildiz Technical University, Istanbul, Turkey
Abstract:In this study, a new method for the estimation of the shrinkage and biasing parameters of Liu-type estimator is proposed. Because k is kept constant and d is optimized in Liu’s method, a (k, d) pair is not guaranteed to be the optimal point in terms of the mean square error of the parameters. The optimum (k, d) pair that minimizes the mean square error, which is a function of the parameters k and d, should be estimated through a simultaneous optimization process rather than through a two-stage process. In this study, by utilizing a different objective function, the parameters k and d are optimized simultaneously with the particle swarm optimization technique.
Keywords:Collinearity  Linear regression  Liu-type estimator  Particle swarm optimization  Ridge regression estimator  
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