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A new clustering technique for function approximation | IEEE Journals & Magazine | IEEE Xplore

A new clustering technique for function approximation


Abstract:

To date, clustering techniques have always been oriented to solve classification and pattern recognition problems. However, some authors have applied them unchanged to co...Show More

Abstract:

To date, clustering techniques have always been oriented to solve classification and pattern recognition problems. However, some authors have applied them unchanged to construct initial models for function approximators. Nevertheless, classification and function approximation problems present quite different objectives. Therefore it is necessary to design new clustering algorithms specialized in the problem of function approximation. This paper presents a new clustering technique, specially designed for function. approximation problems, which improves the performance of the approximator system obtained, compared with other models derived from traditional classification oriented clustering algorithms and input-output clustering techniques.
Published in: IEEE Transactions on Neural Networks ( Volume: 13, Issue: 1, January 2002)
Page(s): 132 - 142
Date of Publication: 31 January 2002

ISSN Information:

PubMed ID: 18244415

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