Title of article :
A Nonlinear Autoregressive Stochastic Frontier Model with Dynamic Technical Inefficiency in Panel Data
Author/Authors :
Feizi, B. Department of Statistics - University of Mazandaran, Babolsar, Iran , Pourdarvish, A. Department of Statistics - University of Mazandaran, Babolsar, Iran
Pages :
17
From page :
59
To page :
75
Abstract :
A branch of researches is devoted to semiparametric and nonparametric estimation of stochastic frontier models to employ the advantages in the operations research technique of data envelopment analysis. The stochastic frontier model is the parametric competition of data envelopment technique. This paper focused on a nonlinear autoregressive stochastic frontier production model that covers dynamic technical inefficiency. We consider a semiparametric method for the model by combining a parametric regression estimator with a nonparametric adjustment . The unknown parameters are estimated using the full maximum likelihood and pairwise composite likelihood methods . After the parameters are estimated by parametric methods , the obtained regression function is adjusted by a nonparametric factor , and the nonparametric factor is obtained through a natural consideration of the local -fitting criterion . Some asymptotic and simulation results for the semiparametric method are discussed .
Farsi abstract :
فاقد چكيده فارسي
Keywords :
Technical inefficiency , Stochastic frontier models , Nonparametric adjustment , Panel data
Journal title :
Iranian Journal of Operations Research (IJOR)
Serial Year :
2020
Record number :
2629826
Link To Document :
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