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An empirical bayes adjustment to multiple p-values for the detection of differentially expressed genes in microarray experiments

机译:对多个p值进行经验Bayes调整以检测微阵列实验中差异表达的基因

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In recent microarray experiments thousands of gene expressions are simultaneously tested in comparing samples (e.g., tissue types or experimental conditions). Application of a statistical test, such as the t-test, would lead to a p-value for each gene that reflects the amount of statistical evidence present in the data that the given gene is indeed differentially expressed. We show how to use these p-values across the genes using the method of empirical Bayes estimation so that each gene in turn borrows evidence of differential expression (or nondifferential expression, whatever the case may be) from all other genes on the microarray. A new set of accept/reject decisions are reached for the differential expressions using the empirical Bayes adjusted p-values through a resampling based step-down p-value calculation that protects the analyst against the overall (familywise) type 1 error rate. The utility of incorporating the empirical Bayes adjustment is illustrated via a number of simulation experiments where we compute various performance measures such as sensitivity, specificity, false discovery rate and false non-discovery rate of the overall testing mechanism with and without the empirical Bayes adjustment.
机译:在最近的微阵列实验中,在比较样品时(例如,组织类型或实验条件),同时测试了数千种基因表达。统计测试(例如t检验)的应用将导致每个基因的p值,该p值反映出数据中存在的统计证据的数量,表明给定基因确实是差异表达的。我们展示了如何使用经验贝叶斯估计的方法跨基因使用这些p值,以便每个基因依次借用微阵列上所有其他基因的差异表达(或非差异表达,视情况而定)的证据。通过基于重新采样的逐步降低的p值计算,使用经验贝叶斯调整后的p值,针对微分表达式达成了一套新的接受/拒绝决策,从而保护了分析人员免受总体(家庭)1类错误率的影响。通过许多模拟实验说明了合并经验贝叶斯调整的效用,在有或没有经验贝叶斯调整的情况下,我们计算各种性能指标,例如整个测试机制的敏感性,特异性,错误发现率和错误未发现率。

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