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Estimation of empirical null using a mixture of normals and its use in local false discovery rate

机译:使用法线混合估计经验空值及其在局部错误发现率中的应用

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When high dimensional microarray data is given, it is of interest to select significant genes by controlling a given level of Type-I error. One popular way to control the level is the false discovery rate (FDR). This paper considers gene selection based on the local false discovery rate. In most of the previous studies, the null distribution of gene expression is commonly assumed to be a normal distribution. However, if the null distribution has heavier tail than that of normal, there may exist too many false discoveries leading to the failure of controlling the given level of FDR. We propose a novel procedure which enriches a class of null distribution based on a mixture of normals. We present simulation studies to show that our proposed procedure is less sensitive to variation of null distribution than local false discovery rate with a single normal for the null. We also provide real example of gene expression profiles of antigen-specific human CD8+ T-lymphocytes treated with cytokine Interleukin-2 (IL-2) and Interleukin-15 (IL-15) for comparison.
机译:当提供高维微阵列数据时,通过控制给定水平的I型错误来选择重要的基因是有意义的。控制级别的一种流行方法是错误发现率(FDR)。本文考虑基于局部错误发现率的基因选择。在大多数以前的研究中,基因表达的零分布通常被认为是正态分布。但是,如果零分布的尾部比正常分布的尾部重,则可能存在太多错误发现,从而导致无法控制给定FDR级别。我们提出了一种新颖的方法,该方法可基于法线混合来丰富一类零分布。我们目前的仿真研究表明,我们提出的程序对零位分布的变化不如对单个零位具有正常值的局部错误发现率敏感。我们还提供了用细胞因子白介素2(IL-2)和白介素15(IL-15)处理的抗原特异性人CD8 + T淋巴细胞基因表达谱的真实示例,以进行比较。

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