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Predicting discourse connectives for implicit discourse relation recognition

  • Zhi Min Zhou*
  • , Yu Xu
  • , Zheng Yu Niu
  • , Man Lan
  • , Jian Su
  • , Chew Lim Tan
  • *此作品的通讯作者

科研成果: 会议稿件论文同行评审

摘要

Existing works indicate that the absence of explicit discourse connectives makes it difficult to recognize implicit discourse relations. In this paper we attempt to overcome this difficulty for implicit relation recognition by automatically inserting discourse connectives between arguments with the use of a language model. Then we propose two algorithms to leverage the information of these predicted connectives. One is to use these predicted implicit connectives as additional features in a supervised model. The other is to perform implicit relation recognition based only on these predicted connectives. Results on Penn Discourse Treebank 2.0 show that predicted discourse connectives help implicit relation recognition and the first algorithm can achieve an absolute average f-score improvement of 3% over a state of the art baseline system.

源语言英语
1507-1514
页数8
出版状态已出版 - 2010
已对外发布
活动23rd International Conference on Computational Linguistics, Coling 2010 - Beijing, 中国
期限: 23 8月 201027 8月 2010

会议

会议23rd International Conference on Computational Linguistics, Coling 2010
国家/地区中国
Beijing
时期23/08/1027/08/10

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