Papers › Deep Keyphrase Generation

Deep Keyphrase Generation

23 Apr 2017ACL 2017 7arXiv:1704.06879archive 2025-07-28

Rui Meng, Sanqiang Zhao, Shuguang Han, Daqing He, Peter Brusilovsky, Yu Chi

Keyphrase provides highly-condensed information that can be effectively used for understanding, organizing and retrieving text content. Though previous studies have provided many workable solutions for automated keyphrase extraction, they commonly divided the to-be-summarized content into multiple text chunks, then ranked and selected the most meaningful ones. These approaches could neither identify keyphrases that do not appear in the text, nor capture the real semantic meaning behind the text. We propose a generative model for keyphrase prediction with an encoder-decoder framework, which can effectively overcome the above drawbacks. We name it as deep keyphrase generation since it attempts to capture the deep semantic meaning of the content with a deep learning method. Empirical analysis on six datasets demonstrates that our proposed model not only achieves a significant performance boost on extracting keyphrases that appear in the source text, but also can generate absent keyphrases based on the semantic meaning of the text. Code and dataset are available at https://github.com/memray/OpenNMT-kpg-release.

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memray/OpenNMT-kpg-release officialmentioned in papermentioned on GitHubpytorchMIT report
Varan7/Hashtag-Recommendation mentioned on GitHubtf report
mon95/deep-keyphrase mentioned on GitHubpytorch report
supercoderhawk/deep-keyphrase mentioned on GitHubpytorch report

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