Query Expansion Model Based on Semi-Supervised Learning
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    Abstract:

    Query expansion is a optimization method for “word mismatch” issues in information retrieval domain. By analyzing the shortcomings of existing methods, query expansion model based on semi-supervised learning is proposed, the model seems query expansion as a classification problem, and using transductvie support vector machine to train the samples. Experiments show that the recall and precision rates of search engine are further improved by this method.

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苏俊杰,陈俊.基于半监督学习的查询扩展模型.计算机系统应用,2012,21(3):181-184

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  • Received:July 01,2011
  • Revised:September 01,2011
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