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Discriminant analysis of multivariate repeated measures data with a Kronecker product structured covariance matrices

机译:用Kronecker乘积结构协方差矩阵对多变量重复测量数据进行判别分析

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摘要

This paper proposes new classifiers under the assumption of multivariate normality for multivariate repeated measures data with Kronecker product covariance structures. These classifiers are especially effective when the number of observations is not large enough to estimate the covariance matrices, and thus the traditional classifiers fail. Computational scheme for maximum likelihood estimates of required class parameters are also given. The quality of these new classifiers are examined on some real data.
机译:本文针对具有Kronecker积协方差结构的多变量重复测量数据,在多变量正态性假设下提出了新的分类器。当观察数量不足以估计协方差矩阵时,这些分类器特别有效,因此传统分类器将失败。还给出了所需类别参数的最大似然估计的计算方案。这些新分类器的质量在某些真实数据上进行了检查。

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