Simultaneous Critical Values For T-Tests In Very High Dimensions
This article considers the problem of multiple hypothesis testing using t-tests. The observed data are assumed to be independently generated conditional on an underlying and unknown two-state hidden model. We propose an asymptotically valid data-driven procedure to find critical values for rejection...
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Published in | Bernoulli : official journal of the Bernoulli Society for Mathematical Statistics and Probability Vol. 17; no. 1; p. 347 |
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Main Authors | , |
Format | Journal Article |
Language | English |
Published |
England
01.02.2011
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Online Access | Get more information |
ISSN | 1350-7265 |
DOI | 10.3150/10-BEJ272 |
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Abstract | This article considers the problem of multiple hypothesis testing using t-tests. The observed data are assumed to be independently generated conditional on an underlying and unknown two-state hidden model. We propose an asymptotically valid data-driven procedure to find critical values for rejection regions controlling k-family wise error rate (k-FWER), false discovery rate (FDR) and the tail probability of false discovery proportion (FDTP) by using one-sample and two-sample t-statistics. We only require finite fourth moment plus some very general conditions on the mean and variance of the population by virtue of the moderate deviations properties of t-statistics. A new consistent estimator for the proportion of alternative hypotheses is developed. Simulation studies support our theoretical results and demonstrate that the power of a multiple testing procedure can be substantially improved by using critical values directly as opposed to the conventional p-value approach. Our method is applied in an analysis of the microarray data from a leukemia cancer study that involves testing a large number of hypotheses simultaneously. |
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AbstractList | This article considers the problem of multiple hypothesis testing using t-tests. The observed data are assumed to be independently generated conditional on an underlying and unknown two-state hidden model. We propose an asymptotically valid data-driven procedure to find critical values for rejection regions controlling k-family wise error rate (k-FWER), false discovery rate (FDR) and the tail probability of false discovery proportion (FDTP) by using one-sample and two-sample t-statistics. We only require finite fourth moment plus some very general conditions on the mean and variance of the population by virtue of the moderate deviations properties of t-statistics. A new consistent estimator for the proportion of alternative hypotheses is developed. Simulation studies support our theoretical results and demonstrate that the power of a multiple testing procedure can be substantially improved by using critical values directly as opposed to the conventional p-value approach. Our method is applied in an analysis of the microarray data from a leukemia cancer study that involves testing a large number of hypotheses simultaneously. |
Author | Cao, Hongyuan Kosorok, Michael R |
Author_xml | – sequence: 1 givenname: Hongyuan surname: Cao fullname: Cao, Hongyuan organization: Department of Statistics and Operations Research, 318 Hanes Hall, CB 3260, University of North Carolina at Chapel Hill, Chapel Hill, NC, 27599 – sequence: 2 givenname: Michael R surname: Kosorok fullname: Kosorok, Michael R |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/21572564$$D View this record in MEDLINE/PubMed |
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CitedBy_id | crossref_primary_10_1093_bioinformatics_btx311 crossref_primary_10_1111_ectj_12092 crossref_primary_10_1214_15_AOS1375 crossref_primary_10_1214_14_AOS1249 crossref_primary_10_1007_s11766_017_3552_y crossref_primary_10_3150_21_BEJ1355 crossref_primary_10_1093_biomet_ast001 |
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