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首页> 外文期刊>SIAM Journal on Matrix Analysis and Applications >The centroid decomposition: Relationships between discrete variational decompositions and SVDs
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The centroid decomposition: Relationships between discrete variational decompositions and SVDs

机译:质心分解:离散变分分解与SVD之间的关系

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The centroid decomposition, an approximation for the singular value decomposition (SVD), has a long history among the statistics/psychometrics community for factor analysis research. We revisit the centroid method in its original context of factor analysis and then adapt it to other than a covariance matrix. The centroid method can be cast as an O(n)-step ascent method on a hypercube. It is shown empirically that the centroid decomposition provides a measurement of second order statistical information of the original data in the direction of the corresponding left centroid vectors. One major purpose of this work is to show fundamental relationships between the singular value, centroid, and semidiscrete decompositions. This unifies an entire class of truncated SVD approximations. Applications include semantic indexing in information retrieval. [References: 17]
机译:质心分解是奇异值分解(SVD)的近似值,在统计学/心理计量学界用于因子分析研究的历史悠久。我们在因子分析的原始上下文中重新研究质心方法,然后将其应用于除协方差矩阵之外的其他方法。质心方法可以在超立方体上转换为O(n)步上升方法。从经验上表明,质心分解提供了在对应的左质心矢量的方向上原始数据的二阶统计信息的测量。这项工作的主要目的是显示奇异值,质心和半离散分解之间的基本关系。这统一了截短的SVD近似的整个类别。应用包括信息检索中的语义索引。 [参考:17]

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