DocumentCode :
1111663
Title :
Polytope ARTMAP: Pattern Classification Without Vigilance Based on General Geometry Categories
Author :
Amorim, Dinani Gomes ; Delgado, Manuel Fernández ; Ameneiro, Senén Barro
Author_Institution :
Univ. of Santiago de Compostela, Santiago
Volume :
18
Issue :
5
fYear :
2007
Firstpage :
1306
Lastpage :
1325
Abstract :
This paper proposes polytope ARTMAP (PTAM), an adaptive resonance theory (ART) network for classification tasks which does not use the vigilance parameter. This feature is due to the geometry of categories in PTAM, which are irregular polytopes whose borders approximate the borders among the output predictions. During training, the categories expand only towards the input pattern without category overlap. The category expansion in PTAM is naturally limited by the other categories, and not by the category size, so the vigilance is not necessary. PTAM works in a fully automatic way for pattern classification tasks, without any parameter tuning, so it is easier to employ for nonexpert users than other classifiers. PTAM achieves lower error than the leading ART networks on a complete collection of benchmark data sets, except for noisy data, without any parameter optimization.
Keywords :
ART neural nets; geometry; pattern classification; adaptive resonance theory; category size; geometry; noisy data; parameter tuning; pattern classification; polytope ARTMAP; Artificial neural networks; Associate members; Data mining; Ellipsoids; Geometry; Pattern classification; Resonance; Robots; Subspace constraints; Supervised learning; Adaptive resonance theory (ART) neural networks; general geometry categories; parameter tuning; polytope category representation regions (CRRs); vigilance; Algorithms; Computer Simulation; Models, Theoretical; Neural Networks (Computer); Pattern Recognition, Automated; Reproducibility of Results; Sensitivity and Specificity;
fLanguage :
English
Journal_Title :
Neural Networks, IEEE Transactions on
Publisher :
ieee
ISSN :
1045-9227
Type :
jour
DOI :
10.1109/TNN.2007.894036
Filename :
4298113
Link To Document :
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