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A P-Norm Robust Feature Extraction Method for Identifying Differentially Expressed Genes

机译:识别差异表达基因的P范数鲁棒特征提取方法

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摘要

In current molecular biology, it becomes more and more important to identify differentially expressed genes closely correlated with a key biological process from gene expression data. In this paper, based on the Schatten p-norm and Lp-norm, a novel p-norm robust feature extraction method is proposed to identify the differentially expressed genes. In our method, the Schatten p-norm is used as the regularization function to obtain a low-rank matrix and the Lp-norm is taken as the error function to improve the robustness to outliers in the gene expression data. The results on simulation data show that our method can obtain higher identification accuracies than the competitive methods. Numerous experiments on real gene expression data sets demonstrate that our method can identify more differentially expressed genes than the others. Moreover, we confirmed that the identified genes are closely correlated with the corresponding gene expression data.
机译:在当前的分子生物学中,从基因表达数据中鉴定与关键生物学过程密切相关的差异表达基因变得越来越重要。本文基于Schatten p-范数和Lp-范数,提出了一种新的p-范数鲁棒特征提取方法来鉴定差异表达基因。在我们的方法中,将Schatten p范数用作正则化函数以获得低秩矩阵,而将Lp范数用作误差函数以提高对基因表达数据中异常值的鲁棒性。仿真数据的结果表明,与竞争方法相比,我们的方法可以获得更高的识别精度。对真实基因表达数据集的大量实验表明,我们的方法可以比其他方法识别更多差异表达的基因。而且,我们证实了所鉴定的基因与相应的基因表达数据紧密相关。

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