首页> 外文期刊>Calcutta statistical association bulletin >A REVIEW OF CONDITIONS UNDER WHICH BLUES AND/OR BLUPS IN ONE LINEAR MIXED MODEL ARE ALSO BLUES AND/OR BLUPS IN ANOTHER
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A REVIEW OF CONDITIONS UNDER WHICH BLUES AND/OR BLUPS IN ONE LINEAR MIXED MODEL ARE ALSO BLUES AND/OR BLUPS IN ANOTHER

机译:在一个线性混合模型中的蓝色和/或斑点在另一种情况下也是蓝色和/或斑点的情况的回顾

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摘要

The linear mixed model, with its combination of fixed and random parameters, plays a central role in many statistical applications. Here we review results on conditions for best linear unbiased estimates (BLUEs) of estimable functions of fixed parameters under one linear mixed model to remain BLUEs under a second model, which differs from the first in covariance structure. Without making full rank assumptions for design matrices or covariance matrices, we also review results for the conditions under which best linear unbiased predictors (BLUPs) of random parameters under the first model remain BLUPs under the second model, and for the conditions under which both BLUEs and BLUPs under the first model remain the BLUEs and BLUPs under the second. We also provide a rather generous list of related references.
机译:线性混合模型及其固定参数和随机参数的组合在许多统计应用中起着核心作用。在这里,我们回顾了在一个线性混合模型下固定参数的可估计函数的最佳线性无偏估计(BLUE)的条件下的结果,从而在第二个模型下仍保持BLUE,这与第一个协方差结构不同。在不对设计矩阵或协方差矩阵进行全等级假设的情况下,我们还回顾了在第二个模型下第一个模型下随机参数的最佳线性无偏预测变量(BLUP)仍为第二个模型下的BLUP的条件下的结果。第一个模型下的BLUP和BLUP仍然在第二个模型下。我们还提供了大量的相关参考资料。

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