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Robust ranks of true associations in genome-wide case-control association studies

机译:全基因组病例对照关联研究中真实关联的稳健等级

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摘要

In whole-genome association studies, at the first stage, all markers are tested for association and their test statistics or p-values are ranked. At the second stage, some most significant markers are further analyzed by more powerful statistical methods. This helps reduce the number of hypotheses to be corrected for in multiple testing. Ranks of true associations in genome-wide scans using a single test statistic have been studied. In a case-control design for association, the trend test has been proposed. However, three different trend tests, optimal for the recessive, additive, and dominant models, respectively, are available for each marker. Because the true genetic model is unknown, we rank markers based on multiple test statistics or test statistics robust to model mis-specification. We studied this problem with application to Problem 3 of Genetic Analysis Workshop 15. An independent simulation study was also conducted to further evaluate the proposed procedure.
机译:在全基因组关联研究中,在第一阶段,对所有标记物进行关联性测试,并对它们的测试统计量或p值进行排名。在第二阶段,通过更强大的统计方法进一步分析一些最重要的标记。这有助于减少要在多次测试中更正的假设的数量。已经研究了使用单个测试统计数据进行全基因组扫描中真实关联的等级。在用于关联的案例控制设计中,已经提出了趋势测试。但是,每种标记都可以使用三种不同的趋势测试,分别适用于隐性,加性和优势模型。因为真正的遗传模型是未知的,所以我们基于多个测试统计数据或对模型失误建模鲁棒的测试统计数据对标记进行排名。我们研究了该问题,并将其应用于遗传分析研讨会15的问题3。还进行了独立的仿真研究,以进一步评估建议的程序。

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