DocumentCode
857318
Title
Modulated Hebb-Oja learning Rule-a method for principal subspace analysis
Author
Jankovic, Marko V. ; Ogawa, Hidemitsu
Author_Institution
Electr. Eng. Inst. "Nikola Tesla", Belgrade, Serbia
Volume
17
Issue
2
fYear
2006
fDate
3/1/2006 12:00:00 AM
Firstpage
345
Lastpage
356
Abstract
This paper presents analysis of the recently proposed modulated Hebb-Oja (MHO) method that performs linear mapping to a lower-dimensional subspace. Principal component subspace is the method that will be analyzed. Comparing to some other well-known methods for yielding principal component subspace (e.g., Oja\´s Subspace Learning Algorithm), the proposed method has one feature that could be seen as desirable from the biological point of view-synaptic efficacy learning rule does not need the explicit information about the value of the other efficacies to make individual efficacy modification. Also, the simplicity of the "neural circuits" that perform global computations and a fact that their number does not depend on the number of input and output neurons, could be seen as good features of the proposed method.
Keywords
learning (artificial intelligence); neural nets; principal component analysis; linear mapping; lower-dimensional subspace; modulated Hebb-Oja learning rule; neural circuits; principal component subspace analysis; synaptic efficacy learning rule; Algorithm design and analysis; Biology computing; Circuits; Data compression; Feature extraction; Neural networks; Neurons; Performance analysis; Principal component analysis; Vectors; Learning algorithm; neural networks; principal component analysis (PCA); principal subspace analysis (PSA); Algorithms; Artificial Intelligence; Computer Simulation; Decision Support Techniques; Models, Theoretical; Neural Networks (Computer); Numerical Analysis, Computer-Assisted; Pattern Recognition, Automated;
fLanguage
English
Journal_Title
Neural Networks, IEEE Transactions on
Publisher
ieee
ISSN
1045-9227
Type
jour
DOI
10.1109/TNN.2005.863455
Filename
1603621
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