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Near-Exact Distributions for Likelihood Ratio Statistics Used in the Simultaneous Test of Conditions on Mean Vectors and Patterns of Covariance Matrices

机译:在协方差矩阵的均值向量和模式条件同时测试中使用的似然比统计量的近似精确分布

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The authors address likelihood ratio statistics used to test simultaneously conditions on mean vectors and patterns on covariance matrices. Tests for conditions on mean vectors, assuming or not a given structure for the covariance matrix, are quite common, since they may be easily implemented. But, on the other hand, the practical use of simultaneous tests for conditions on the mean vectors and a given pattern for the covariance matrix is usually hindered by the nonmanageability of the expressions for their exact distribution functions. The authors show the importance of being able to adequately factorize the c.f. of the logarithm of likelihood ratio statistics in order to obtain sharp and highly manageable near-exact distributions, or even the exact distribution in a highly manageable form. The tests considered are the simultaneous tests of equality or nullity of means and circularity, compound symmetry, or sphericity of the covariance matrix. Numerical studies show the high accuracy of the near-exact distributions and their adequacy for cases with very small samples and/or large number of variables. The exact and near-exact quantiles computed show how the common chi-square asymptotic approximation is highly inadequate for situations with small samples or large number of variables.
机译:作者介绍了用于同时检验均值向量条件和协方差矩阵模式的似然比统计量。假设是否具有协方差矩阵的给定结构,对均值向量条件的测试非常普遍,因为它们很容易实现。但是,另一方面,对于均值向量条件和协方差矩阵的给定模式的同时检验的实际使用通常会因表达式的确切分布函数的不可管理性而受到阻碍。作者表明了能够充分分解c.f.的重要性。计算似然比统计的对数,以获取尖锐且高度可管理的近精确分布,甚至以高度可管理的形式获得精确的分布。所考虑的测试是均值或零值与圆度,复合对称性或协方差矩阵的球形性的同时测试。数值研究表明,几乎精确的分布具有很高的准确性,并且对于样本量很小和/或变量数量很多的情况,它们的适用性很高。计算出的精确和近乎精确的分位数表明,对于具有少量样本或大量变量的情况,常见的卡方渐近逼近是多么不充分。

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  • 来源
    《Mathematical Problems in Engineering》 |2016年第3期|8975902.1-8975902.25|共25页
  • 作者单位

    FCT UNL, Ctr Matemat & Aplicacoes, P-2829516 Caparica, Portugal|Univ Nova Lisboa, Dept Matemat, Fac Ciencias & Tecnol, P-2829516 Caparica, Portugal;

    FCT UNL, Ctr Matemat & Aplicacoes, P-2829516 Caparica, Portugal|Univ Nova Lisboa, Dept Matemat, Fac Ciencias & Tecnol, P-2829516 Caparica, Portugal;

    FCT UNL, Ctr Matemat & Aplicacoes, P-2829516 Caparica, Portugal|Inst Politecn Setubal, Dept Econ & Gestao, P-2910761 Setubal, Portugal;

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