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Cannonical correlation analysis (CCA)

Chapter
Publication Date:
2021
abstract:
Canonical correlation analysis (CCA) is a natural generalization of PCA when the data contain two sets of variables (Hotelling, 1936). As in PCA, CCA also aims at simplifying the correlation structure between the two sets of variables by employing linear transformations. However, the presence of two sets of variables complicates the problem, as well as the notations.
Iris type:
2.1 Contributo in volume (Capitolo o Saggio)
List of contributors:
Trendafilov, Nickolay; Gallo, Michele
Authors of the University:
GALLO Michele
Handle:
https://unora.unior.it/handle/11574/200747
Book title:
Multivariate Data Analysis on Matrix Manifolds (with Manopt)
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