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基于半参数层次混合模型的经验贝叶斯最优发现程序。

An empirical Bayes optimal discovery procedure based on semiparametric hierarchical mixture models.

机构信息

Department of Data Science, The Institute of Statistical Mathematics, 10-3 Midori-cho, Tachikawa, Tokyo 190-8562, Japan.

出版信息

Comput Math Methods Med. 2013;2013:568480. doi: 10.1155/2013/568480. Epub 2013 Apr 10.

Abstract

Multiple testing has been widely adopted for genome-wide studies such as microarray experiments. For effective gene selection in these genome-wide studies, the optimal discovery procedure (ODP), which maximizes the number of expected true positives for each fixed number of expected false positives, was developed as a multiple testing extension of the most powerful test for a single hypothesis by Storey (Journal of the Royal Statistical Society, Series B, vol. 69, no. 3, pp. 347-368, 2007). In this paper, we develop an empirical Bayes method for implementing the ODP based on a semiparametric hierarchical mixture model using the "smoothing-by-roughening" approach. Under the semiparametric hierarchical mixture model, (i) the prior distribution can be modeled flexibly, (ii) the ODP test statistic and the posterior distribution are analytically tractable, and (iii) computations are easy to implement. In addition, we provide a significance rule based on the false discovery rate (FDR) in the empirical Bayes framework. Applications to two clinical studies are presented.

摘要

多重检验已广泛应用于全基因组研究,如微阵列实验。为了在这些全基因组研究中有效地进行基因选择,开发了最优发现程序 (ODP),它通过 Storey 的最强大的单个假设检验的扩展(Journal of the Royal Statistical Society,Series B,vol. 69,no. 3,pp. 347-368,2007),为每个固定数量的预期假阳性最大化预期真阳性的数量。在本文中,我们使用“平滑加粗糙”方法,基于半参数层次混合模型,开发了一种基于经验贝叶斯的 ODP 实现方法。在半参数层次混合模型下,(i)可以灵活地建模先验分布,(ii)ODP 检验统计量和后验分布是可分析的,(iii)计算易于实现。此外,我们还提供了一种基于经验贝叶斯框架中的错误发现率 (FDR) 的显著规则。我们将其应用于两项临床研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ac36/3649332/79b9c0c1bb20/CMMM2013-568480.001.jpg

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