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首页> 外文期刊>Journal of Bioinformatics and Computational Biology >A THEORETICAL ANALYSIS OF THE SELECTION OF DIFFERENTIALLY EXPRESSED GENES
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A THEORETICAL ANALYSIS OF THE SELECTION OF DIFFERENTIALLY EXPRESSED GENES

机译:差异表达基因选择的理论分析

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A great deal of recent research has focused on the challenging task of selecting differentially expressed genes from microarray data ("gene selection"). Numerous gene selection algorithms have been proposed in the literature, but it is often unclear exactly how these algorithms respond to conditions like small sample sizes or differing variances. Choosing an appropriate algorithm can therefore be difficult in many cases. In this paper we propose a theoretical analysis of gene selection, in which the probability of successfully selecting differentially expressed genes, using a given ranking function, is explicitly calculated in terms of population parameters. The theory developed is applicable to any ranking function which has a known sampling distribution, or one which can be approximated analytically. In contrast to methods based on simulation, the approach presented here is computationally efficient and can be used to examine the behavior of gene selection algorithms under a wide variety of conditions, even when the number of genes involved runs into the tens of thousands. The utility of our approach is illustrated by comparing three widely-used gene selection methods.
机译:最近的大量研究专注于从微阵列数据(“基因选择”中选择差异表达基因的挑战性任务。在文献中提出了许多基因选择算法,但是究竟既不清楚这些算法如何响应小样本尺寸或不同差异的条件。因此,在许多情况下,选择合适的算法可能是困难的。本文提出了基因选择的理论分析,其中在人口参数方面明确地计算了使用给定排名函数成功选择差异表达基因的概率。该理论适用于具有已知采样分布的任何排名功能,或者可以分析地近似的任何排名功能。与基于模拟的方法相比,这里呈现的方法是计算上有效的,并且可以用于在各种条件下检查基因选择算法的行为,即使涉及的基因数量进入成千上万的基因。通过比较三种广泛使用的基因选择方法来说明我们方法的效用。

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