A Span-based Linearization for Constituent Trees
Yang Wei, Yuanbin Wu, Man Lan
摘要
We propose a novel linearization of a constituent tree, together with a new locally normalized model. For each split point in a sentence, our model computes the normalizer on all spans ending with that split point, and then predicts a tree span from them. Compared with global models, our model is fast and parallelizable. Different from previous local models, our linearization method is tied on the spans directly and considers more local features when performing span prediction, which is more interpretable and effective. Experiments on PTB (95.8 F1) and CTB (92.1 F1) show that our model significantly outperforms existing local models and efficiently achieves competitive results with global models.
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引用它的顶会 Paper5
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- Don't Parse, Choose Spans! Continuous and Discontinuous Constituency Parsing via Autoregressive Span SelectionSonglin Yang, Kewei TuACL 2023 · 被引用 1 次
- Dynamic Head Selection for Neural Lexicalized Constituency ParsingYang Hou, Zhenghua LiACL 2025
- N-ary Constituent Tree Parsing with Recursive Semi-Markov ModelXin Xin, Jinlong Li, Zeqi TanACL 2021
- A Conditional Splitting Framework for Efficient Constituency ParsingThanh-Tung Nguyen, Xuan-Phi Nguyen, Shafiq R. Joty, Xiaoli LiACL 2021
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