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Tracking Interval to Select an Optimal Model Among Non-nested Copula Functions
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作者 Parisa Torkaman 《Communications in Mathematics and Statistics》 SCIE 2022年第1期85-99,共15页
One of the important issues in order to survey multivariate distribution or model dependency structure between interested variables is finding the proper copula function.Extensive studies have been done based on Akaik... One of the important issues in order to survey multivariate distribution or model dependency structure between interested variables is finding the proper copula function.Extensive studies have been done based on Akaike information criterion(AIC),copula information criterion(CIC),and pseudo-likelihood ratio and fitness test of the copula function.The previous methods of selecting copula functions when the sample size is too small are not satisfactory.Therefore,our method in this paper is based on tracking interval for the parametric copula function which is obtained using expected Kullback–Leibler risk between the two proposed non-nested parametric copulamodel.It can be find that optimal parametric copula between proposed copula functions in a good level of significance.Finally,efficiency and capability of our method using simulation and applied example have been shown. 展开更多
关键词 COPULA Tracking interval expected Kullback-Leibler risk
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