Triad-based Neural Network for Coreference Resolution
September 18, 2018 Β· Declared Dead Β· π International Conference on Computational Linguistics
"No code URL or promise found in abstract"
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Authors
Yuanliang Meng, Anna Rumshisky
arXiv ID
1809.06491
Category
cs.IR: Information Retrieval
Cross-listed
cs.CL
Citations
5
Venue
International Conference on Computational Linguistics
Last Checked
4 months ago
Abstract
We propose a triad-based neural network system that generates affinity scores between entity mentions for coreference resolution. The system simultaneously accepts three mentions as input, taking mutual dependency and logical constraints of all three mentions into account, and thus makes more accurate predictions than the traditional pairwise approach. Depending on system choices, the affinity scores can be further used in clustering or mention ranking. Our experiments show that a standard hierarchical clustering using the scores produces state-of-art results with gold mentions on the English portion of CoNLL 2012 Shared Task. The model does not rely on many handcrafted features and is easy to train and use. The triads can also be easily extended to polyads of higher orders. To our knowledge, this is the first neural network system to model mutual dependency of more than two members at mention level.
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