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A statistical method for the conservative adjustment of false discovery rate ( q -value)

机译:虚假发现率(q值)的保守调整的一种统计方法

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Background q -value is a widely used statistical method for estimating false discovery rate (FDR), which is a conventional significance measure in the analysis of genome-wide expression data. q -value is a random variable and it may underestimate FDR in practice. An underestimated FDR can lead to unexpected false discoveries in the follow-up validation experiments. This issue has not been well addressed in literature, especially in the situation when the permutation procedure is necessary for p -value calculation. Results We proposed a statistical method for the conservative adjustment of q -value. In practice, it is usually necessary to calculate p -value by a permutation procedure. This was also considered in our adjustment method. We used simulation data as well as experimental microarray or sequencing data to illustrate the usefulness of our method. Conclusions The conservativeness of our approach has been mathematically confirmed in this study. We have demonstrated the importance of conservative adjustment of q -value, particularly in the situation that the proportion of differentially expressed genes is small or the overall differential expression signal is weak.
机译:背景q值是估计错误发现率(FDR)的一种广泛使用的统计方法,该方法是分析全基因组表达数据的常规显着性指标。 q值是一个随机变量,在实践中它可能会低估FDR。在后续的验证实验中,被低估的FDR可能导致意外的错误发现。这个问题在文献中还没有得到很好的解决,特别是在需要使用置换程序进行p值计算的情况下。结果我们提出了一种统计方法对q值进行保守调整。实际上,通常需要通过置换程序来计算p值。我们的调整方法也考虑了这一点。我们使用模拟数据以及实验性微阵列或测序数据来说明我们方法的有效性。结论本研究在数学上证实了我们方法的保守性。我们已经证明了保守调整q值的重要性,特别是在差异表达基因的比例很小或整体差异表达信号较弱的情况下。

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