Augmenting Neural Sentence Summarization through Extractive Summarization
Zhu, Junnan1; Zhou, Long1; Li, Haoran1; Zhang, Jiajun1; Zhou, Yu1; Zong, Chengqing1,2
2017-11
会议名称Proceedings of the 6th Conference on Natural Language Processing and Chinese Computing
会议日期2017.11.8-2017.11.12
会议地点Dalian, China
会议录编者/会议主办者CCF
出版者Springer
摘要

Neural sequence-to-sequence model has achieved great success in abstractive summarization task. However, due to the limit of input length, most of previous works can only utilize lead sentences as the input to generate the abstractive summarization, which ignores crucial information of the document. To alleviate this problem, we propose a novel approach to improve neural sentence summarization by using extractive summarization, which aims at taking full advantage of the document information as much as possible. Furthermore, we present both of streamline strategy and system combination strategy to achieve the fusion of the contents in di erent views, which can be easily adapted to other domains. Experimental results on CNN/Daily Mail dataset demonstrate both our proposed strategies can signi cantly improve the performance of neural sentence summarization.

收录类别EI
语种英语
文献类型会议论文
条目标识符http://ir.ia.ac.cn/handle/173211/39086
专题多模态人工智能系统全国重点实验室_自然语言处理
作者单位1.University of Chinese Academy of Sciences National Laboratory of Pattern Recognition, CASIA
2.CAS Center for Excellence in Brain Science and Intelligence Technology
第一作者单位中国科学院自动化研究所
推荐引用方式
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Zhu, Junnan,Zhou, Long,Li, Haoran,et al. Augmenting Neural Sentence Summarization through Extractive Summarization[C]//CCF:Springer,2017.
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