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EUROGP
2005
Springer

Evolving Rules for Document Classification

13 years 10 months ago
Evolving Rules for Document Classification
We describe a novel method for using Genetic Programming to create compact classification rules based on combinations of N-Grams (character strings). Genetic programs acquire fitness by producing rules that are effective classifiers in terms of precision and recall when evaluated against a set of training documents. We describe a set of functions and terminals and provide results from a classification task using the Reuters 21578 dataset. We also suggest that because the induced rules are meaningful to a human analyst they may have a number of other uses beyond classification and provide a basis for text mining applications.
Laurence Hirsch, Masoud Saeedi, Robin Hirsch
Added 27 Jun 2010
Updated 27 Jun 2010
Type Conference
Year 2005
Where EUROGP
Authors Laurence Hirsch, Masoud Saeedi, Robin Hirsch
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