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A penalized matrix decomposition, with applications to sparse principal components and canonical correlation analysis

机译:惩罚矩阵分解及其在稀疏主成分和典型相关分析中的应用

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摘要

We present a penalized matrix decomposition (PMD), a new framework for computing a rank-K approximation for a matrix. We approximate the matrix X as , where dk, uk, and vk minimize the squared Frobenius norm of X, subject to penalties on uk and vk. This results in a regularized version of the singular value decomposition. Of particular interest is the use of L1-penalties on uk and vk, which yields a decomposition of X using sparse vectors. We show that when the PMD is applied using an L1-penalty on vk but not on uk, a method for sparse principal components results. In fact, this yields an efficient algorithm for the “SCoTLASS” proposal (Jolliffe and others 2003) for obtaining sparse principal components. This method is demonstrated on a publicly available gene expression data set. We also establish connections between the SCoTLASS method for sparse principal component analysis and the method of Zou and others (2006). In addition, we show that when the PMD is applied to a cross-products matrix, it results in a method for penalized canonical correlation analysis (CCA). We apply this penalized CCA method to simulated data and to a genomic data set consisting of gene expression and DNA copy number measurements on the same set of samples.
机译:我们提出了惩罚矩阵分解(PMD),一种用于计算矩阵的秩K近似的新框架。我们将矩阵X近似为,其中dk,uk和vk最小化X的平方Frobenius范数,但要受到uk和vk的惩罚。这导致奇异值分解的正规化版本。特别令人感兴趣的是在uk和vk上使用L1罚分,使用稀疏向量将X分解。我们表明,当在vk而不是在uk上使用L1罚分应用PMD时,会导致一种稀疏主成分的方法。实际上,这为“ SCoTLASS”建议(Jolliffe等2003)提供了一种获得稀疏主成分的有效算法。该方法在可公开获得的基因表达数据集上得到证明。我们还建立了用于稀疏主成分分析的SCoTLASS方法与Zou等人(2006年)方法之间的联系。此外,我们表明,将PMD应用于叉积矩阵时,会导致一种惩罚式典范相关分析(CCA)的方法。我们将这种惩罚性的CCA方法应用于模拟数据和包括基因表达和DNA拷贝数测量的同一组样本的基因组数据集。

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