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  4. An online Hebbian learning rule that performs Independent Component Analysis
 
conference paper

An online Hebbian learning rule that performs Independent Component Analysis

Clopath, Claudia
•
Longtin, Andre
•
Gerstner, Wulfram  
Platt, J.C.
•
Koller, D.
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2008
Advances in Neural Information Processing Systems 20
NIPS

Independent component analysis (ICA) is a powerful method to decouple signals. Most of the algorithms performing ICA do not consider the temporal correlations of the signal, but only higher moments of its amplitude distribution. Moreover, they require some preprocessing of the data (whitening) so as to remove second order correlations. In this paper, we are interested in understanding the neural mechanism responsible for solving ICA. We present an online learning rule that exploits delayed correlations in the input. This rule performs ICA by detecting joint variations in the firing rates of pre- and postsynaptic neurons, similar to a local rate-based Hebbian learning rule.

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Type
conference paper
Author(s)
Clopath, Claudia
Longtin, Andre
Gerstner, Wulfram  
Editors
Platt, J.C.
•
Koller, D.
•
Singer, Y.
•
Roweis, S.
Date Issued

2008

Publisher

MIT Press

Publisher place

Cambridge, MA

Published in
Advances in Neural Information Processing Systems 20
Start page

321

End page

328

URL

URL

http://books.nips.cc/nips20.html
Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LCN  
Event nameEvent placeEvent date
NIPS

Vancouver, B.C., Canada

December 3-6, 2007

Available on Infoscience
August 6, 2009
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/41992
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