Boosting the tree augmented naive bayes classifier
Contribuinte(s) |
Z. Yang R. Everson H. Yin |
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Data(s) |
01/01/2004
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Resumo |
The Tree Augmented Naïve Bayes (TAN) classifier relaxes the sweeping independence assumptions of the Naïve Bayes approach by taking account of conditional probabilities. It does this in a limited sense, by incorporating the conditional probability of each attribute given the class and (at most) one other attribute. The method of boosting has previously proven very effective in improving the performance of Naïve Bayes classifiers and in this paper, we investigate its effectiveness on application to the TAN classifier. |
Identificador | |
Idioma(s) |
eng |
Publicador |
Springer |
Palavras-Chave | #E1 #280207 Pattern Recognition #700101 Application packages |
Tipo |
Conference Paper |