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Unsupervised Abstractive Meeting Summarization with Multi-Sentence Compression and Budgeted Submodular Maximization

2018-05-14 · ACL 2018 7 · Guokan Shang, Wensi Ding, Zekun Zhang, Antoine Jean-Pierre Tixier, Polykarpos Meladianos, Michalis Vazirgiannis, Jean-Pierre Lorré

We introduce a novel graph-based framework for abstractive meeting speech summarization that is fully unsupervised and does not rely on any annotations. Our work combines the strengths of multiple recent approaches while addressing their weaknesses. Moreover, we leverage recent advances in word embeddings and graph degeneracy applied to NLP to take exterior semantic knowledge into account, and to design custom diversity and informativeness measures. Experiments on the AMI and ICSI corpus show that our system improves on the state-of-the-art. Code and data are publicly available, and our system can be interactively tested.

📄 PDF Abstract BibTeX arXiv:1805.05271

Code (4)

https://bitbucket.org/dascim/acl2018_abssumm 공식 구현
Tixierae/gow_tools
bearblog/CoreRank
xcfcode/Summarization-Papers pytorch

Tasks

Abstractive Dialogue SummarizationAbstractive Text SummarizationDialogue UnderstandingDiversityInformativenessMeeting SummarizationSentenceSentence CompressionWord Embeddings

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