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Incorporating the number of true null hypotheses to improve power in multiple testing: application to gene microarray data

机译:合并真实无效假设的数量以提高多重测试的功效:应用于基因芯片数据

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Testing for significance with gene expression data from DNA microarray experiments involves simultaneous comparisons of hundreds orthousands of genes. In common exploratory microarray experiments, most genes are not expected to be differentially expressed. The family-wise error (FWE) rate and false discovery rate (FDR) are two common approaches used to account for multiple hypothesis tests to identify differentially expressed genes. When the number of hypotheses is very large and some null hypotheses are expected to be true, the power of an FWE or FDR procedure can be improved if the number of null hypotheses is known. The mean of differences (MD) of ranked p-values has been proposed to estimate the number of true null hypotheses under the independence model. This article proposes to incorporate the MD estimate into an FWE or FDR approach for gene identification. Simulation results show that the procedure appears to control the FWE and FDR well at the FWE = 0.05 and FDR = 0.05 significant levels; it exceeds the nominal level for FDR = 0.01 when the null hypotheses are highly correlated, a correlation of 0.941. The proposed approach is applied to a public colon tumor data set for illustration.
机译:使用来自DNA芯片实验的基因表达数据来检验重要性,涉及同时比较数百个基因。在普通的探索性微阵列实验中,大多数基因预计不会差异表达。家庭错误率(FWE)和错误发现率(FDR)是用于解释多重假设检验以鉴定差异表达基因的两种常用方法。当假设的数量非常大且某些零假设被期望为真时,如果已知零假设的数量,则可以提高FWE或FDR过程的功能。已经提出了等级p值的均值(MD)来估计独立模型下的真实零假设的数量。本文建议将MD估计值合并到FWE或FDR方法中进行基因鉴定。仿真结果表明,该程序似乎在FWE = 0.05和FDR = 0.05显着水平下很好地控制了FWE和FDR。当零假设高度相关时,它超过FDR = 0.01的名义水平,相关系数为0.941。所提出的方法应用于公共结肠肿瘤数据集以进行说明。

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