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A comparison of parametric versus permutation methods with applications to general and temporal microarray gene expression data

机译:参数化和置换方法的比较及其在一般和时间微阵列基因表达数据中的应用

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Motivation: In analyses of microarray data with a design of different biological conditions, ranking genes by their differential 'importance' is often desired so that biologists can focus research on a small subset of genes that are most likely related to the experiment conditions. Permutation methods are often recommended and used, in place of their parametric counterparts, due to the small sample sizes of microarray experiments and possible non-normality of the data. The recommendations, however, are based on classical knowledge in the hypothesis test setting. Results: We explore the relationship between hypothesis testing and gene ranking. We indicate that the permutation method does not provide a metric for the distance between two underlying distributions. In our simulation studies permutation methods tend to be equally or less accurate than parametric methods in ranking genes. This is partially due to the discreteness of the permutation distributions, as well as the non-metric property. In data analysis the variability in ranking genes can be assessed by bootstrap. It turns out that the variability is much lower for permutation than parametric methods, which agrees with the known robustness of permutation methods to individual outliers in the data.
机译:动机:在设计具有不同生物学条件的微阵列数据分析中,通常需要按差异的“重要性”对基因进行排名,以便生物学家可以将研究重点放在与实验条件最可能相关的一小部分基因上。由于微阵列实验的样本量较小且数据可能存在非正态性,因此通常推荐并使用置换方法来代替其参数对应方法。但是,这些建议是基于假设检验条件下的经典知识。结果:我们探讨了假设检验与基因排名之间的关系。我们指出,置换方法未提供两个基础分布之间距离的度量。在我们的仿真研究中,在对基因进行排名时,排列方法的准确性往往与参数方法相同或较低。这部分是由于置换分布的离散性以及非度量属性造成的。在数据分析中,可以通过自举来评估排名基因的变异性。事实证明,置换的可变性比参数方法低得多,这与置换方法对数据中各个异常值的已知稳健性相符。

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