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RANDOM BALANCED RESAMPLING: A NEW METHOD FOR ESTIMATING VARIANCE COMPONENTS IN UNBALANCED DESIGNS

机译:随机平衡重采样:一种估算平衡设计中方差分量的新方法

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Variance components in factorial designs with balanced data are commonly estimated by equating mean squares to expected mean squares. For unbalanced data, the usual extensions of this approach are the Henderson methods, which require formulas that are rather involved. Alternatively, maximum likelihood estimation based on normality has been proposed. Although the algorithm for maximum likelihood is computationally complex, programs exist in some statistical packages. This article introduces a simpler method, that of creating a balanced data set by resampling from the original one. Revised formulas for expected mean squares are presented for the two-way case; they are easily generalized to larger factorial designs. The results of a number of simulation studies indicate that, in certain types of designs, the proposed method has performance advantages over both the Henderson Method I and maximum likelihood estimators.
机译:具有均衡数据的析因设计中的方差成分通常通过将均方与期望均方相等来估算。对于不平衡数据,此方法的通常扩展是Henderson方法,该方法需要相当复杂的公式。可替代地,已经提出了基于正态性的最大似然估计。尽管最大似然算法在计算上很复杂,但程序仍存在于某些统计软件包中。本文介绍了一种更简单的方法,即通过从原始方法重新采样来创建平衡的数据集。针对双向情况,提出了预期均方的修订公式。它们很容易推广到较大的析因设计。大量仿真研究的结果表明,在某些类型的设计中,与Henderson方法I和最大似然估计器相比,该方法具有性能优势。

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