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GECCO
2005
Springer

Extending XCSF beyond linear approximation

13 years 10 months ago
Extending XCSF beyond linear approximation
XCSF is the extension of XCS in which classifier prediction is computed as a linear combination of classifier inputs and a weight vector associated to each classifier. XCSF can exploit classifiers’ computable prediction to evolve accurate piecewise linear approximations of functions. In this paper, we take XCSF one step further and show how XCSF can be easily extended to allow polynomial approximations. We test the extended version of XCSF on various approximation problems and show that quadratic/cubic approximations can be used to significantly improve XCSF’s generalization capabilities. Categories and Subject Descriptors
Pier Luca Lanzi, Daniele Loiacono, Stewart W. Wils
Added 27 Jun 2010
Updated 27 Jun 2010
Type Conference
Year 2005
Where GECCO
Authors Pier Luca Lanzi, Daniele Loiacono, Stewart W. Wilson, David E. Goldberg
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