Multi-class Linear Feature Extraction by Nonlinear PCA

R.P.W. Duin, M. Loog, R. Haeb-Umbach, in: International Conference on Pattern Recognition (ICPR 2000), 2000.

Conference Paper | English
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Duin, Robert P.W.; Loog, Marco; Haeb-Umbach, ReinholdLibreCat
Abstract
The traditional way to find a linear solution to the feature extraction problem is based on the maximization of the class-between scatter over the class-within scatter (Fisher mapping). For the multi-class problem this is, however, sub-optimal due to class conjunctions, even for the simple situation of normal distributed classes with identical covariance matrices. We propose a novel, equally fast method, based on nonlinear PCA. Although still sub-optimal, it may avoid the class conjunction. The proposed method is experimentally compared with Fisher mapping and with a neural network based approach to nonlinear PCA. It appears to outperform both methods, the first one even in a dramatic way.
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International Conference on Pattern Recognition (ICPR 2000)
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Duin RPW, Loog M, Haeb-Umbach R. Multi-class Linear Feature Extraction by Nonlinear PCA. In: International Conference on Pattern Recognition (ICPR 2000). ; 2000.
Duin, R. P. W., Loog, M., & Haeb-Umbach, R. (2000). Multi-class Linear Feature Extraction by Nonlinear PCA. In International Conference on Pattern Recognition (ICPR 2000).
@inproceedings{Duin_Loog_Haeb-Umbach_2000, title={Multi-class Linear Feature Extraction by Nonlinear PCA}, booktitle={International Conference on Pattern Recognition (ICPR 2000)}, author={Duin, Robert P.W. and Loog, Marco and Haeb-Umbach, Reinhold}, year={2000} }
Duin, Robert P.W., Marco Loog, and Reinhold Haeb-Umbach. “Multi-Class Linear Feature Extraction by Nonlinear PCA.” In International Conference on Pattern Recognition (ICPR 2000), 2000.
R. P. W. Duin, M. Loog, and R. Haeb-Umbach, “Multi-class Linear Feature Extraction by Nonlinear PCA,” in International Conference on Pattern Recognition (ICPR 2000), 2000.
Duin, Robert P. W., et al. “Multi-Class Linear Feature Extraction by Nonlinear PCA.” International Conference on Pattern Recognition (ICPR 2000), 2000.
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