Bipartite Flat-Graph Network for Nested Named Entity Recognition
Ying Luo, Hai Zhao
Abstract
In this paper, we propose a novel bipartite flatgraph network (BiFlaG) for nested named entity recognition (NER), which contains two subgraph modules: a flat NER module for outermost entities and a graph module for all the entities located in inner layers. Bidirectional LSTM (BiLSTM) and graph convolutional network (GCN) are adopted to jointly learn flat entities and their inner dependencies. Different from previous models, which only consider the unidirectional delivery of information from innermost layers to outer ones (or outside-toinside), our model effectively captures the bidirectional interaction between them. We first use the entities recognized by the flat NER module to construct an entity graph, which is fed to the next graph module. The richer representation learned from graph module carries the dependencies of inner entities and can be exploited to improve outermost entity predictions. Experimental results on three standard nested NER datasets demonstrate that our BiFlaG outperforms previous state-of-the-art models.
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Cited by top-tier papers9
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- Bottom-Up Constituency Parsing and Nested Named Entity Recognition with Pointer NetworksSonglin Yang, Kewei TuACL 2022 · 59 citations
- Named Entity Recognition Only from Word EmbeddingsYing Luo, Hai Zhao, Junlang ZhanEMNLP 2020 · 22 citations
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- DCMN+: Dual Co-Matching Network for Multi-Choice Reading ComprehensionShuailiang Zhang, Hai Zhao, Yuwei Wu, Zhuosheng Zhang et al.AAAI 2020 · 138 citations
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