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Missing value estimation for DNA microarray gene expression data with principal curves

机译:具有主曲线的DNA芯片基因表达数据的缺失值估计

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Computing analysis of gene expression data has been an essential approach for understanding cellular activities and identifying gene function. However, expression profiles generated by the high-throughput microarray experiments often contain missing values, which significantly affect the performance of subsequent statistical analysis and machine learning algorithms. So there is a great need for estimating these missing values as accurately as possible. Although there have been many estimation algorithms, but each of them has its flaws. This paper proposes an estimation method for missing values based on principal curve which is a nonlinear generalization of the first linear principal component analysis. Through finding the self-consistent smooth one dimensional curves that pass through the ‘middle’ of a multidimensional data set, principal curve can integrate the linear and nonlinear relationships between genes, and reveal the distribution of genes. Based on the framework of all the expression profiles, missing values can be estimated more accurately. To assess the performance of the method, comparisons with recently proposed estimation algorithms are carried out on several microarray data sets. The results shows that our method provides a better solution for the estimation of missing values in DNA microarray gene expression data.
机译:基因表达数据的计算分析已成为了解细胞活动和鉴定基因功能的重要方法。但是,由高通量微阵列实验生成的表达谱通常包含缺失值,这会严重影响后续统计分析和机器学习算法的性能。因此,迫切需要尽可能准确地估计这些缺失值。尽管估计算法很多,但是每个算法都有其缺陷。本文提出了一种基于主曲线的缺失值估计方法,该方法是第一线性主成分分析的非线性概括。通过找到穿过多维数据集“中间”的自洽平滑一维曲线,主曲线可以整合基因之间的线性和非线性关系,并揭示基因的分布。基于所有表达谱的框架,可以更准确地估计缺失值。为了评估该方法的性能,在几个微阵列数据集上与最近提出的估计算法进行了比较。结果表明,我们的方法为估计DNA微阵列基因表达数据中的缺失值提供了更好的解决方案。

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