Article (Scientific journals)
Non-linear generalization of principal component analysis: From a global to a local approach
Kerschen, Gaëtan; Golinval, Jean-Claude
2002In Journal of Sound and Vibration, 254 (5), p. 867-876
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Keywords :
Vibrations; Nonlinear; Dynamics; Aerospace; Structures; Principal component analysis; linear transformation
Abstract :
[en] Principal component analysis (PCA), also known as proper orthogonal decomposition or Karhunen-Loeve transform, is commonly used to reduce the dimensionality of a data set with a large number of interdependent variables. PCA is the optimal linear transformation with respect to minimizing the mean square reconstruction error but it only considers second-order statistics. If the data have non-linear dependencies, an important issue is to develop a technique which takes higher order statistics into account and which can eliminate dependencies not removed by PCA. Recognizing the shortcomings of PCA, researchers in the field of statistics and neural networks have developed non-linear extensions of PCA. The purpose of this paper is to present a non-linear generalization of PCA, called VQPCA. This algorithm builds local linear models by combining PCA with clustering of the input space. This paper concludes by observing from two illustrative examples that VQPCA is potentially a more effective tool than conventional PCA. (C) 2002 Elsevier Science Ltd. All rights reserved.
Disciplines :
Electrical & electronics engineering
Mechanical engineering
Physics
Author, co-author :
Kerschen, Gaëtan  ;  Université de Liège - ULiège > Département d'aérospatiale et mécanique > Laboratoire de structures et systèmes spatiaux
Golinval, Jean-Claude  ;  Université de Liège - ULiège > Département d'aérospatiale et mécanique > LTAS - Vibrations et identification des structures
Language :
English
Title :
Non-linear generalization of principal component analysis: From a global to a local approach
Publication date :
25 July 2002
Journal title :
Journal of Sound and Vibration
ISSN :
0022-460X
eISSN :
1095-8568
Publisher :
Academic Press Ltd Elsevier Science Ltd, London, United Kingdom
Volume :
254
Issue :
5
Pages :
867-876
Peer reviewed :
Peer Reviewed verified by ORBi
Available on ORBi :
since 18 August 2009

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