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ACL2022顶会

Constrained Multi-Task Learning for Bridging Resolution

Hideo Kobayashi, Yufang Hou, Vincent Ng

2022年份
3顶会引用

摘要

We examine the extent to which supervised bridging resolvers can be improved without employing additional labeled bridging data by proposing a novel constrained multi-task learning framework for bridging resolution, within which we (1) design cross-task consistency constraints to guide the learning process; (2) pretrain the entity coreference model in the multitask framework on the large amount of publicly available coreference data; and (3) integrate prior knowledge encoded in rule-based resolvers. Our approach achieves state-of-theart results on three standard evaluation corpora.

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