ArXiv | 2019

How to best use Syntax in Semantic Role Labelling

 
 
 
 
 

Abstract


There are many different ways in which external information might be used in an NLP task. This paper investigates how external syntactic information can be used most effectively in the Semantic Role Labeling (SRL) task. We evaluate three different ways of encoding syntactic parses and three different ways of injecting them into a state-of-the-art neural ELMo-based SRL sequence labelling model. We show that using a constituency representation as input features improves performance the most, achieving a new state-of-the-art for non-ensemble SRL models on the in-domain CoNLL 05 and CoNLL 12 benchmarks.

Volume abs/1906.00266
Pages None
DOI 10.18653/v1/P19-1529
Language English
Journal ArXiv

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