A Wilcoxon-Mann-Whitney-type test for infinite-dimensional data

成果类型:
Article
署名作者:
Chakraborty, Anirvan; Chaudhuri, Probal
署名单位:
Indian Statistical Institute; Indian Statistical Institute Kolkata
刊物名称:
BIOMETRIKA
ISSN/ISSBN:
0006-3444
DOI:
10.1093/biomet/asu072
发表日期:
2015
页码:
239246
关键词:
multivariate rank-tests functional data 2-sample test sample distributions anova depth sign
摘要:
The Wilcoxon-Mann-Whitney test is a robust competitor of the test in the univariate setting. For finite-dimensional multivariate non-Gaussian data, several extensions of the Wilcoxon-Mann-Whitney test have been shown to outperform Hotelling's test. In this paper, we study a Wilcoxon-Mann-Whitney-type test based on spatial ranks in infinite-dimensional spaces, we investigate its asymptotic properties and compare it with several existing tests. The proposed test is shown to be robust with respect to outliers and to have better power than some competitors for certain distributions with heavy tails. We study its performance using real and simulated data.
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