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MCS
2000
Springer

A Hybrid Projection Based and Radial Basis Function Architecture

13 years 8 months ago
A Hybrid Projection Based and Radial Basis Function Architecture
We introduce a mechanism for constructing and training a hybrid architecture of projection based units and radial basis functions. In particular, we introduce an optimization scheme which includes several steps and assures a convergence to a useful solution. During network architecture construction and training, it is determined whether a unit should be removed or replaced. The resulting architecture has often smaller number of units compared with competing architectures. A specific overfitting resulting from shrinkage of the RBF radii is addressed by introducing a penalty on small radii. Classification and regression results are demonstrated on various benchmark data sets and compared with several variants of RBF networks [1, 12]. A striking performance improvement is achieved on the vowel data set [8].
Shimon Cohen, Nathan Intrator
Added 25 Aug 2010
Updated 25 Aug 2010
Type Conference
Year 2000
Where MCS
Authors Shimon Cohen, Nathan Intrator
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