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文章基本信息

  • 标题:Automatic Text Summarization
  • 作者:Mohamed Abdel Fattah, Fuji Ren
  • 期刊名称:International Journal of Computer Science
  • 出版年度:2008
  • 卷号:3
  • 期号:01
  • 出版社:World Enformatika Society
  • 摘要:

    This work proposes an approach to address automatic
    text summarization. This approach is a trainable summarizer, which
    takes into account several features, including sentence position,
    positive keyword, negative keyword, sentence centrality, sentence
    resemblance to the title, sentence inclusion of name entity, sentence
    inclusion of numerical data, sentence relative length, Bushy path of
    the sentence and aggregated similarity for each sentence to generate
    summaries. First we investigate the effect of each sentence feature on
    the summarization task. Then we use all features score function to
    train genetic algorithm (GA) and mathematical regression (MR)
    models to obtain a suitable combination of feature weights. The
    proposed approach performance is measured at several compression
    rates on a data corpus composed of 100 English religious articles.
    The results of the proposed approach are promising.v

  • 关键词:Automatic Summarization; Genetic Algorithm; Mathematical Regression; Text Features..
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