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Categorización de texto en bases documentales a partir de modelos computacionales livianos

DOI: 10.4067/S0718-09342011000300004

Keywords: text categorization, bayesian models, information retrieval.

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Abstract:

we introduce a new text categorization method for documentary databases. the proposed method is an extension of the naive bayes text categorization model which allows obtaining good performance results in documentary databases with unbalanced training data. experimental results allow us to conclude that the categorization method overcomes na?ve bayes and compares favorably with more sophisticated categorization methods such as support vector machines and logistic regression without increasing the use of computational resources in the training phase.

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