Phrase-aware Unsupervised Constituency Parsing
Xiaotao Gu, Yikang Shen, Jiaming Shen, Jingbo Shang, Jiawei Han
Abstract
Recent studies have achieved inspiring success in unsupervised grammar induction using masked language modeling (MLM) as the proxy task. Despite their high accuracy in identifying low-level structures, prior arts tend to struggle in capturing high-level structures like clauses, since the MLM task usually only requires information from local context. In this work, we revisit LM-based constituency parsing from a phrase-centered perspective. Inspired by the natural reading process of human readers, we propose to regularize the parser with phrases extracted by an unsupervised phrase tagger to help the LM model quickly manage low-level structures. For a better understanding of high-level structures, we propose a phrase-guided masking strategy for LM to emphasize more on reconstructing nonphrase words. We show that the initial phrase regularization serves as an effective bootstrap, and phrase-guided masking improves the identification of high-level structures. Experiments on the public benchmark with two different backbone models demonstrate the effectiveness and generality of our method.
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- Neural Bi-Lexicalized PCFG InductionSonglin Yang, Yanpeng Zhao, Kewei TuACL 2021
- StructFormer: Joint Unsupervised Induction of Dependency and Constituency Structure from Masked Language ModelingYikang Shen, Yi Tay, Che Zheng, Dara Bahri et al.ACL 2021
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