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Stouffer’s Test in a Large Scale Simultaneous Hypothesis Testing

In microarray data analysis, we are often required to combine several dependent partial test results. To overcome this, many suggestions have been made in previous literature; Tippett’s test and Fisher’s omnibus test are most popular. Both tests have known null distributions when the partial tests a...

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Autores principales: Kim, Sang Cheol, Lee, Seul Ji, Lee, Won Jun, Yum, Young Na, Kim, Joo Hwan, Sohn, Soojung, Park, Jeong Hill, Lee, Jeongmi, Lim, Johan, Kwon, Sung Won
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3653960/
https://www.ncbi.nlm.nih.gov/pubmed/23691011
http://dx.doi.org/10.1371/journal.pone.0063290
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author Kim, Sang Cheol
Lee, Seul Ji
Lee, Won Jun
Yum, Young Na
Kim, Joo Hwan
Sohn, Soojung
Park, Jeong Hill
Lee, Jeongmi
Lim, Johan
Kwon, Sung Won
author_facet Kim, Sang Cheol
Lee, Seul Ji
Lee, Won Jun
Yum, Young Na
Kim, Joo Hwan
Sohn, Soojung
Park, Jeong Hill
Lee, Jeongmi
Lim, Johan
Kwon, Sung Won
author_sort Kim, Sang Cheol
collection PubMed
description In microarray data analysis, we are often required to combine several dependent partial test results. To overcome this, many suggestions have been made in previous literature; Tippett’s test and Fisher’s omnibus test are most popular. Both tests have known null distributions when the partial tests are independent. However, for dependent tests, their (even, asymptotic) null distributions are unknown and additional numerical procedures are required. In this paper, we revisited Stouffer’s test based on z-scores and showed its advantage over the two aforementioned methods in the analysis of large-scale microarray data. The combined statistic in Stouffer’s test has a normal distribution with mean 0 from the normality of the z-scores. Its variance can be estimated from the scores of genes in the experiment without an additional numerical procedure. We numerically compared the errors of Stouffer’s test and the two p-value based methods, Tippett’s test and Fisher’s omnibus test. We also analyzed our microarray data to find differentially expressed genes by non-genotoxic and genotoxic carcinogen compounds. Both numerical study and the real application showed that Stouffer’s test performed better than Tippett’s method and Fisher’s omnibus method with additional permutation steps.
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spelling pubmed-36539602013-05-20 Stouffer’s Test in a Large Scale Simultaneous Hypothesis Testing Kim, Sang Cheol Lee, Seul Ji Lee, Won Jun Yum, Young Na Kim, Joo Hwan Sohn, Soojung Park, Jeong Hill Lee, Jeongmi Lim, Johan Kwon, Sung Won PLoS One Research Article In microarray data analysis, we are often required to combine several dependent partial test results. To overcome this, many suggestions have been made in previous literature; Tippett’s test and Fisher’s omnibus test are most popular. Both tests have known null distributions when the partial tests are independent. However, for dependent tests, their (even, asymptotic) null distributions are unknown and additional numerical procedures are required. In this paper, we revisited Stouffer’s test based on z-scores and showed its advantage over the two aforementioned methods in the analysis of large-scale microarray data. The combined statistic in Stouffer’s test has a normal distribution with mean 0 from the normality of the z-scores. Its variance can be estimated from the scores of genes in the experiment without an additional numerical procedure. We numerically compared the errors of Stouffer’s test and the two p-value based methods, Tippett’s test and Fisher’s omnibus test. We also analyzed our microarray data to find differentially expressed genes by non-genotoxic and genotoxic carcinogen compounds. Both numerical study and the real application showed that Stouffer’s test performed better than Tippett’s method and Fisher’s omnibus method with additional permutation steps. Public Library of Science 2013-05-14 /pmc/articles/PMC3653960/ /pubmed/23691011 http://dx.doi.org/10.1371/journal.pone.0063290 Text en © 2013 Kim et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Kim, Sang Cheol
Lee, Seul Ji
Lee, Won Jun
Yum, Young Na
Kim, Joo Hwan
Sohn, Soojung
Park, Jeong Hill
Lee, Jeongmi
Lim, Johan
Kwon, Sung Won
Stouffer’s Test in a Large Scale Simultaneous Hypothesis Testing
title Stouffer’s Test in a Large Scale Simultaneous Hypothesis Testing
title_full Stouffer’s Test in a Large Scale Simultaneous Hypothesis Testing
title_fullStr Stouffer’s Test in a Large Scale Simultaneous Hypothesis Testing
title_full_unstemmed Stouffer’s Test in a Large Scale Simultaneous Hypothesis Testing
title_short Stouffer’s Test in a Large Scale Simultaneous Hypothesis Testing
title_sort stouffer’s test in a large scale simultaneous hypothesis testing
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3653960/
https://www.ncbi.nlm.nih.gov/pubmed/23691011
http://dx.doi.org/10.1371/journal.pone.0063290
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