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On bias reduction estimators of skew-normal and skew-t distributions
Authors:Mohammad Mahdi Maghami  Mohammad Bahrami  Farkhondeh Alsadat Sajadi
Affiliation:Department of Statistics, University of Isfahan, Isfahan, Iran
Abstract:
A particular concerns of researchers in statistical inference is bias in parameters estimation. Maximum likelihood estimators are often biased and for small sample size, the first order bias of them can be large and so it may influence the efficiency of the estimator. There are different methods for reduction of this bias. In this paper, we proposed a modified maximum likelihood estimator for the shape parameter of two popular skew distributions, namely skew-normal and skew-t, by offering a new method. We show that this estimator has lower asymptotic bias than the maximum likelihood estimator and is more efficient than those based on the existing methods.
Keywords:Bias-corrected estimators   bias prevention   maximum likelihood estimator   skew-normal   skew-t
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