Title of article
Robust tests for the common principal components model
Author/Authors
Boente، نويسنده , , Graciela and Pires، نويسنده , , Ana M. and Rodrigues، نويسنده , , Isabel M.، نويسنده ,
Issue Information
روزنامه با شماره پیاپی سال 2009
Pages
16
From page
1332
To page
1347
Abstract
When dealing with several populations, the common principal components (CPC) model assumes equal principal axes but different variances along them. In this paper, a robust log-likelihood ratio statistic allowing to test the null hypothesis of a CPC model versus no restrictions on the scatter matrices is introduced. The proposal plugs into the classical log-likelihood ratio statistic robust scatter estimators. Using the same idea, a robust log-likelihood ratio and a robust Wald-type statistic for testing proportionality against a CPC model are considered. Their asymptotic distributions under the null hypothesis and their partial influence functions are derived. A small simulation study allows to compare the behavior of the classical and robust tests, under normal and contaminated data.
Keywords
Common Principal Components , Log-likelihood ratio test , Plug-in methods , Proportional scatter matrices , robust estimation , Wald-type test
Journal title
Journal of Statistical Planning and Inference
Serial Year
2009
Journal title
Journal of Statistical Planning and Inference
Record number
2219921
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