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A Parametric Bootstrap Test for Two-Way ANOVA Model Without Interaction Under Heteroscedasticity
Authors:Liwen Xu  Fangqin Yang  Ranran Chen
Institution:College of Sciences, North China University of Technology, Beijing, China
Abstract:In this article we consider the two-way ANOVA model without interaction under heteroscedasticity. For the problem of testing equal effects of factors, we propose a parametric bootstrap (PB) approach and compare it with existing the generalized F (GF) test. The Type I error rates and powers of the tests are evaluated using Monte Carlo simulation. Our studies show that the PB test performs better than the GF test. The PB test performs very satisfactorily even for small samples while the GF test exhibits poor Type I error properties when the number of factorial combinations or treatments goes up. It is also noted that the same tests can be used to test the significance of random effect variance component in a two-way mixed-effects model under unequal error variances.
Keywords:Bootstrap re-sampling  Generalized F-test  Generalized p-values  Mixed effects
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