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High dimensional asymptotics for the naive Hotelling T2 statistic in pattern recognition
Authors:Mitsuru Tamatani  Kanta Naito
Institution:1. Faculty of Culture and Information Science, Doshisha University, Kyoto, Japan;2. mtamatan@mail.doshisha.ac.jp;4. Division of Mathematical Science, Graduate School of Science and Engineering, Shimane University, Matsue, Japan
Abstract:Abstract

This paper examines the high dimensional asymptotics of the naive Hotelling T2 statistic. Naive Bayes has been utilized in high dimensional pattern recognition as a method to avoid singularities in the estimated covariance matrix. The naive Hotelling T2 statistic, which is equivalent to the estimator of the naive canonical correlation, is a statistically important quantity in naive Bayes and its high dimensional behavior has been studied under several conditions. In this paper, asymptotic normality of the naive Hotelling T2 statistic under a high dimension low sample size setting is developed using the central limit theorem of a martingale difference sequence.
Keywords:Asymptotic normality  high dimension low sample size  martingale difference sequence  naive canonical correlation coefficient  naive Hotelling T2 statistic
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