Regularized Generalized Canonical Correlation Analysis

被引:0
|
作者
Arthur Tenenhaus
Michel Tenenhaus
机构
[1] Supelec,Department of Signal Processing and Electronics Systems
[2] Gif-sur-Yvette,undefined
[3] HEC Paris,undefined
来源
Psychometrika | 2011年 / 76卷
关键词
generalized canonical correlation analysis; multi-block data analysis; PLS path modeling; regularized canonical correlation analysis;
D O I
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学科分类号
摘要
Regularized generalized canonical correlation analysis (RGCCA) is a generalization of regularized canonical correlation analysis to three or more sets of variables. It constitutes a general framework for many multi-block data analysis methods. It combines the power of multi-block data analysis methods (maximization of well identified criteria) and the flexibility of PLS path modeling (the researcher decides which blocks are connected and which are not). Searching for a fixed point of the stationary equations related to RGCCA, a new monotonically convergent algorithm, very similar to the PLS algorithm proposed by Herman Wold, is obtained. Finally, a practical example is discussed.
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