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ACL2020顶会

Hierarchical Entity Typing via Multi-level Learning to Rank

Tongfei Chen, Yunmo Chen, Benjamin Van Durme

2020年份
51被引次数
12顶会引用

摘要

We propose a novel method for hierarchical entity classification that embraces ontological structure at both training and during prediction. At training, our novel multi-level learning-to-rank loss compares positive types against negative siblings according to the type tree. During prediction, we define a coarse-to-fine decoder that restricts viable candidates at each level of the ontology based on already predicted parent type(s). Our approach significantly outperform prior work on strict accuracy, demonstrating the effectiveness of our method.

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