Unsupervised Open-domain Keyphrase Generation
Lam Do, Pritom Saha Akash, Kevin Chen-Chuan Chang
Abstract
In this work, we study the problem of unsupervised open-domain keyphrase generation, where the objective is a keyphrase generation model that can be built without using human-labeled data and can perform consistently across domains. To solve this problem, we propose a seq2seq model that consists of two modules, namely phraseness and informativeness module, both of which can be built in an unsupervised and open-domain fashion. The phraseness module generates phrases, while the informativeness module guides the generation towards those that represent the core concepts of the text. We thoroughly evaluate our proposed method using eight benchmark datasets from different domains. Results on in-domain datasets show that our approach achieves stateof-the-art results compared with existing unsupervised models, and overall narrows the gap between supervised and unsupervised methods down to about 16%. Furthermore, we demonstrate that our model performs consistently across domains, as it overall surpasses the baselines on out-of-domain datasets. 1 .
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- Unsupervised Keyphrase Extraction by Jointly Modeling Local and Global ContextXinnian Liang, Shuangzhi Wu, Mu Li, Zhoujun LiEMNLP 2021 · 49 citations
- Unsupervised Deep Keyphrase GenerationXianjie Shen, Yinghan Wang, Rui Meng, Jingbo ShangAAAI 2022 · 19 citations
- Select, Extract and Generate: Neural Keyphrase Generation with Layer-wise Coverage AttentionWasi Uddin Ahmad, Xiao Bai, Soomin Lee, Kai-Wei ChangACL 2021
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