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文章基本信息

  • 标题:Feature Extraction for Prophetic Traditions Texts Classification
  • 作者:Fouzi Harrag ; Abdul Malik Salman Al-Salman ; Eyas El-Qawasmah
  • 期刊名称:Communications of the ACS
  • 电子版ISSN:2090-102X
  • 出版年度:2012
  • 卷号:5
  • 期号:1
  • 出版社:The Arab Computer Society
  • 摘要:In this paper, a comparative study is conducted of three text preprocessing techniques in the context of the Arabic text categorization problem using an in-house Arabic dataset. We evaluated and compared three Stemming techniques: Light-Stemming, Root-Based-Stemming and Dictionary-Lookup-Stemming, to reduce the feature space into an input space of much lower dimension for two different state-of-the art classifiers: Artificial Neural Networks and support vectors machine. The results illustrated that using light stemmer enhances the performance of Arabic Text Categorization. The results also showed that the proposed Artificial Neural Networks model was able to achieve high categorization effectiveness as measured by Macro-Average F1 measure.
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