Face recognition using kernel principal component analysis.

A kernel principal component analysis (PCA) was previously proposed as a nonlinear extension of a PCA. The basic idea is to first map the input space into a feature space via nonlinear mapping and then compute the principal components in that feature space. This article adopts the kernel PCA as a me...

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Bibliografische gegevens
Gepubliceerd in:IEEE Signal processing letters 9, 2 (2002).
Hoofdauteur: Kwang In Kim
Formaat: Artikel
Taal:English
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