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INFORMATICALT
2007

Neuro-IG: A Hybrid System for Selection and Elimination of Predictor Variables and non Relevant Individuals

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Neuro-IG: A Hybrid System for Selection and Elimination of Predictor Variables and non Relevant Individuals
In this article we present the general architecture of a hybrid neuro-symbolic system for the selection and stepwise elimination of predictor variables and non-relevant individuals for the construction of a model. Our purpose is to design tools for extracting the relevant variables and the relevant individuals for an automatic training from data. The objective is to reduce the complexity of storage, therefore the complexity of calculation, and to gradually improve the performance of ordering, that is to say to arrive at a good quality training. Key words: hybrid system, neural network, automatic training, pruning, symbolic system, rule extraction.
Baghdad Atmani, Bouziane Beldjilali
Added 15 Dec 2010
Updated 15 Dec 2010
Type Journal
Year 2007
Where INFORMATICALT
Authors Baghdad Atmani, Bouziane Beldjilali
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