Combining Self-Training and Self-Supervised Learning for Unsupervised Disfluency Detection
Shaolei Wang, Zhongyuan Wang, Wanxiang Che, Ting Liu
摘要
Most existing approaches to disfluency detection heavily rely on human-annotated corpora, which is expensive to obtain in practice. There have been several proposals to alleviate this issue with, for instance, self-supervised learning techniques, but they still require humanannotated corpora. In this work, we explore the unsupervised learning paradigm which can potentially work with unlabeled text corpora that are cheaper and easier to obtain. Our model builds upon the recent work on Noisy Student Training, a semi-supervised learning approach that extends the idea of self-training. Experimental results on the commonly used English Switchboard test set show that our approach achieves competitive performance compared to the previous state-of-the-art supervised systems using contextualized word embeddings (e.g. BERT and ELECTRA).
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它引用的顶会 Paper4
- ELECTRA: Pre-training Text Encoders as Discriminators Rather Than GeneratorsKevin Clark, Minh-Thang Luong, Quoc V. Le, Christopher D. ManningICLR 2020 · 被引用 541 次
- Multi-Task Self-Supervised Learning for Disfluency DetectionShaolei Wang, Wanxiang Che, Qi Liu, Pengda Qin 等AAAI 2020 · 被引用 56 次
- Improving Disfluency Detection by Self-Training a Self-Attentive ModelParia Jamshid Lou, Mark JohnsonACL 2020 · 被引用 11 次
- Self-Training With Noisy Student Improves ImageNet ClassificationQizhe Xie, Minh-Thang Luong, Eduard H. Hovy, Quoc V. LeCVPR 2020
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