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Coupled Helmholtz machine for PCA SCIE SCOPUS

Title
Coupled Helmholtz machine for PCA
Authors
Choi, S
Date Issued
2006-08-03
Publisher
INSTITUTION ENGINEERING TECHNOLOGY-IE
Abstract
A coupled Helmholtz machine for principal component analysis (PCA), where sub-machines are related through sharing some latent variables and associated weights, is presented. A wake-sleep PCA algorithm for training the coupled Helmholtz machine is then presented, showing that the algorithm iteratively determines principal eigenvectors of a data covariance matrix without any rotational ambiguity, in contrast to some existing methods that perform factor analysis or principal subspace analysis. The coupled Helmholtz machine provides a unified view of principal component analysis, including various existing algorithms as its special cases. The validity of the wake-sleep PCA algorithm is confirmed by numerical experiments.
URI
https://oasis.postech.ac.kr/handle/2014.oak/23836
DOI
10.1049/EL:20060932
ISSN
0013-5194
Article Type
Article
Citation
ELECTRONICS LETTERS, vol. 42, no. 16, page. 936 - 937, 2006-08-03
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최승진CHOI, SEUNGJIN
Dept of Computer Science & Enginrg
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