Bootstrap resampling approaches for repeated measure designs: Relative robustness to sphericity and normality violations

被引:142
作者
Berkovits, I [1 ]
Hancock, GR [1 ]
Nevitt, J [1 ]
机构
[1] Univ Maryland, Sch Med, Baltimore, MD 21201 USA
关键词
D O I
10.1177/00131640021970961
中图分类号
G44 [教育心理学];
学科分类号
0402 ; 040202 ;
摘要
The current article proposes a bootstrap-F method and a bootstrap-T-2 method for use in a one-way repeated measure ANOVA design. Using a Monte Carlo approach in which sample size, nonsphericity, and nonnormality are systematically manipulated, the Type I error rate of the two bootstrap methods are compared to that of the traditional F test, the Geisser-Greenhouse adjusted F test, the Box adjusted F test, the Huynh-Feldt adjusted F test, the beta -trimmed mean method using beta = .1 and beta = .2, and the one-sample multivariate T-2 test. Results show the bootstrap-F method controls Type I error better than all other methods considered when normality and sphericity assumptions are violated simultaneously.
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收藏
页码:877 / 892
页数:16
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