kfda (1.0.0)

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Kernel Fisher Discriminant Analysis.

https://github.com/ainsuotain/kfda
http://cran.r-project.org/web/packages/kfda

Kernel Fisher Discriminant Analysis (KFDA) is performed using Kernel Principal Component Analysis (KPCA) and Fisher Discriminant Analysis (FDA). There are some similar packages. First, 'lfda' is a package that performs Local Fisher Discriminant Analysis (LFDA) and performs other functions. In particular, 'lfda' seems to be impossible to test because it needs the label information of the data in the function argument. Also, the 'ks' package has a limited dimension, which makes it difficult to analyze properly. This package is a simple and practical package for KFDA based on the paper of Yang, J., Jin, Z., Yang, J. Y., Zhang, D., and Frangi, A. F. (2004) .

Maintainer: Donghwan Kim
Author(s): Donghwan Kim

License: GPL-3

Uses: kernlab, MASS

Released about 1 year ago.


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