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Deformable Stacked Structure for Named Entity Recognition

2018-09-24Unverified0· sign in to hype

Shuyang Cao, Xipeng Qiu, Xuanjing Huang

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Abstract

Neural architecture for named entity recognition has achieved great success in the field of natural language processing. Currently, the dominating architecture consists of a bi-directional recurrent neural network (RNN) as the encoder and a conditional random field (CRF) as the decoder. In this paper, we propose a deformable stacked structure for named entity recognition, in which the connections between two adjacent layers are dynamically established. We evaluate the deformable stacked structure by adapting it to different layers. Our model achieves the state-of-the-art performances on the OntoNotes dataset.

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