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Fast learning complex-valued classifiers for real-valued classification problems

delete2012-06-29
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PRE
AI
S
Savitha Ramasamy *
S
Suresh, S.
N
N. Sundararajan
DOI:10.1007/s13042-012-0112-xdelete
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Abstract

Abstract

En 中文
In this paper, we present two fast learning complex-valued, single hidden layer neural network classifiers namely, 'bilinear branch-cut complex-valued extreme learning machine (BB-CELM)' and 'phase encoded complex-valued extreme learning machine (PE-CELM)' to solve real-valued classification problems. BB-CELM and PE-CELM use the bilinear transformation with a branch-cut at 2 pi and the phase encoded transformation, respectively, at the input layer to transform the feature space from the real domain to complex domain (R -> C). A complex-valued activation function of the type of hyperbolic secant employed at the hidden layer maps the complex-valued feature space to a hyper dimensional complex space (C-m -> C-K K>m). BB-CELM and PE-CELM are trained by choosing the hidden layer parameters randomly and computing the output weights analytically. Therefore, these classifiers require minimal computational effort during the training process. The performances of these classifiers are evaluated on a set of benchmark classification problems from the UCI machine learning repository and a practical acoustic emission signal classification problem. The results of the performance study highlight the superior classification ability of BB-CELM and PE-CELM classifiers.
Keywords:
Complex-valued neural networks
Bilinear transformation
Phase encoded transformation
Branch-cut
Extreme learning machine

Journal

International Journal of Machine Learning and Cybernetics cover
International Journal of Machine Learning and Cybernetics
IF:
2.7
Papers:
3.2K
Citations:
5.6K

Organization

N
Nanyang Technological University
Scholars:
4.9W
Papers: 4.8W
Citations: 8.1W
S
Sri Jayachamarajendra College of Engineering
Scholars:
321
Papers: 265
Citations: 0
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