An Investigation of Potential Function Designs for Neural CRF

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Authors Zechuan Hu, Yong Jiang, Nguyen Bach, Tao Wang, Zhongqiang Huang, Fei Huang, Kewei Tu arXiv ID 2011.05604 Category cs.CL: Computation & Language Cross-listed cs.LG Citations 5 Venue Findings Last Checked 5 months ago
Abstract
The neural linear-chain CRF model is one of the most widely-used approach to sequence labeling. In this paper, we investigate a series of increasingly expressive potential functions for neural CRF models, which not only integrate the emission and transition functions, but also explicitly take the representations of the contextual words as input. Our extensive experiments show that the decomposed quadrilinear potential function based on the vector representations of two neighboring labels and two neighboring words consistently achieves the best performance.
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