Integrating defeasible argumentation with fuzzy ART neural networks for pattern classification
Gómez, Sergio Alejandro et al · SEDICI UNLP · 2004
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input, and a number of clusters c<SUB>1</SUB>,...c<SUB>m</SUB> modelling some concept C results as an output, such that every cluster c<SUB>i</SUB> is labelled as positive or negative. Given a new, unlabelled
instance e<SUB>new</SUB>, the above classification is used to determine to which particular cluster c<SUB>i</SUB> this new instance belongs. In such a setting clusters can overlap, and a new unlabelled instance can be assigned to more than one cluster with conflicting labels. In the literature, such a case is usually solved non-deterministically by making a random choice. This paper
presents a novel, hybrid approach to solve this situation
by combining a neural network for classification along with a defeasible argumentation framework which models preference
criteria for performing clustering.
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APA 7
Gómez, S. A. E. A. (2004). Integrating defeasible argumentation with fuzzy ART neural networks for pattern classification. http://sedici.unlp.edu.ar/handle/10915/9479
MLA
Gómez, Sergio Alejandro et al. "Integrating defeasible argumentation with fuzzy ART neural networks for pattern classification." 2004. http://sedici.unlp.edu.ar/handle/10915/9479.
Chicago
Gómez, Sergio Alejandro et al. 2004. "Integrating defeasible argumentation with fuzzy ART neural networks for pattern classification.". http://sedici.unlp.edu.ar/handle/10915/9479.
Harvard
Gómez, S. A. E. A. 2004, Integrating defeasible argumentation with fuzzy ART neural networks for pattern classification, SEDICI UNLP, available at: http://sedici.unlp.edu.ar/handle/10915/9479 [Accessed 28 Jun. 2026].
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- Título
- Integrating defeasible argumentation with fuzzy ART neural networks for pattern classification
- Autor / colaboradores
- Gómez, Sergio Alejandro et al
- Editorial
- SEDICI UNLP
- Año de publicación
- 2004
- Idioma
- en
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