Web-Based Unsupervised Learning for Query Formulation in Question Answering

نویسندگان

  • Yi-Chia Wang
  • Jian-Cheng Wu
  • Tyne Liang
  • Jason S. Chang
چکیده

Converting questions to effective queries is crucial to open-domain question answering systems. In this paper, we present a web-based unsupervised learning approach for transforming a given natural-language question to an effective query. The method involves querying a search engine for Web passages that contain the answer to the question, extracting patterns that characterize fine-grained classification for answers, and linking these patterns with n-grams in answer passages. Independent evaluation on a set of questions shows that the proposed approach outperforms a naive keywordbased approach in terms of mean reciprocal rank and human effort.

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تاریخ انتشار 2005