مشخصات پژوهش

صفحه نخست /Application of ant colony ...
عنوان Application of ant colony optimization for feature selection in text categorization
نوع پژوهش مقاله ارائه شده
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چکیده Feature selection is commonly used to reduce dimensionality of datasets with tens or hundreds of thousands of features. A major problem of text categorization is the high dimensionality of the feature space; therefore, feature selection is the most important step in text categorization. This paper presents a novel feature selection algorithm that is based on ant colony optimization. Ant colony optimization algorithm is inspired by observation on real ants in their search for the shortest paths to food sources. Proposed algorithm is easily implemented and because of use of a simple classifier in that, its computational complexity is very low. The performance of proposed algorithm is compared to the performance of information gain and CHI algorithms on the task of feature selection in Reuters-21578 dataset. Simulation results on Reuters-21578 dataset show the superiority of the proposed algorithm.
پژوهشگران مهدی حسین زاده اقدم (Mehdi Hosseinzadeh Aghdam) (نفر اول)، ناصر قاسم آقایی (نفر دوم)، محمداحسان بصیری (نفر سوم)