StructFormer: Joint Unsupervised Induction of Dependency and Constituency Structure from Masked Language Modeling
Yikang Shen, Yi Tay, Che Zheng, Dara Bahri, Donald Metzler, Aaron C. Courville
摘要
There are two major classes of natural language grammars -the dependency grammar that models one-to-one correspondences between words and the constituency grammar that models the assembly of one or several corresponded words. While previous unsupervised parsing methods mostly focus on only inducing one class of grammars, we introduce a novel model, StructFormer, that can induce dependency and constituency structure at the same time. To achieve this, we propose a new parsing framework that can jointly generate a constituency tree and dependency graph. Then we integrate the induced dependency relations into the transformer, in a differentiable manner, through a novel dependencyconstrained self-attention mechanism. Experimental results show that our model can achieve strong results on unsupervised constituency parsing, unsupervised dependency parsing, and masked language modeling at the same time. 1
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引用它的顶会 Paper16
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- A Systematic Assessment of Syntactic Generalization in Neural Language ModelsJennifer Hu, Jon Gauthier, Peng Qian, Ethan Wilcox 等ACL 2020 · 被引用 124 次
- Are Pre-trained Language Models Aware of Phrases? Simple but Strong Baselines for Grammar InductionTaeuk Kim, Jihun Choi, Daniel Edmiston, Sang-goo LeeICLR 2020 · 被引用 92 次
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