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Nonlinear Component Analysis as a Kernel Eigenvalue Problem

Neural Computation · 1998 · Vol. 10(5) · pp. 1299–1319
Bernhard SchölkopfAlexander J. SmolaKlaus‐Robert Müller

Abstract

A new method for performing a nonlinear form of principal component analysis is proposed. By the use of integral operator kernel functions, one can efficiently compute principal components in high-dimensional feature spaces, related to input space by some nonlinear map—for instance, the space of all possible five-pixel products in 16 × 16 images. We give the derivation of the method and present experimental results on polynomial feature extraction for pattern recognition.

Neural Networks and ApplicationsBlind Source Separation TechniquesImage and Signal Denoising MethodsKernel principal component analysisPrincipal component analysisEigenvalues and eigenvectorsNonlinear systemKernel (algebra)MathematicsPattern recognition (psychology)PixelPolynomialArtificial intelligence

Funding

  • Studienstiftung des Deutschen Volkes
Citations
8,015
FWCI
53.72
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28
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Backpropagation Applied to Handwritten Zip Code Recognition
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Principal Component Analysis
Technometrics · 1988 · 8,686 citations
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