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Case-deletion Influence Measures for the Data from Multivariate t Distributions
Authors:Feng-Chang Xie  Bo-Cheng Wei  Jin-Guan Lin
Institution:  a Department of Mathematics, Southeast University, Nanjing, China b Department of Applied Mathematics, Nanjing Agricultural University, Nanjing, China
Abstract:For the data from multivariate t distributions, it is very hard to make an influence analysis based on the probability density function since its expression is intractable. In this paper, we present a technique for influence analysis based on the mixture distribution and EM algorithm. In fact, the multivariate t distribution can be considered as a particular Gaussian mixture by introducing the weights from the Gamma distribution. We treat the weights as the missing data and develop the influence analysis for the data from multivariate t distributions based on the conditional expectation of the complete-data log-likelihood function in the EM algorithm. Several case-deletion measures are proposed for detecting influential observations from multivariate t distributions. Two numerical examples are given to illustrate our methodology.
Keywords:Multivariate t distribution  influence analysis  EM algorithm  case-deletion  generalized Cook distance
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