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      Syntax-aware Multilingual Semantic Role Labeling

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          Abstract

          Recently, semantic role labeling (SRL) has earned a series of success with even higher performance improvements, which can be mainly attributed to syntactic integration and enhanced word representation. However, most of these efforts focus on English, while SRL on multiple languages more than English has received relatively little attention so that is kept underdevelopment. Thus this paper intends to fill the gap on multilingual SRL with special focus on the impact of syntax and contextualized word representation. Unlike existing work, we propose a novel method guided by syntactic rule to prune arguments, which enables us to integrate syntax into multilingual SRL model simply and effectively. We present a unified SRL model designed for multiple languages together with the proposed uniform syntax enhancement. Our model achieves new state-of-the-art results on the CoNLL-2009 benchmarks of all seven languages. Besides, we pose a discussion on the syntactic role among different languages and verify the effectiveness of deep enhanced representation for multilingual SRL.

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          Author and article information

          Journal
          31 August 2019
          Article
          1909.00310
          8d7f2fa0-6c43-49b6-9f93-daefb574514f

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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          Shexia He and Zuchao Li made equal contribution to this paper
          cs.CL

          Theoretical computer science
          Theoretical computer science

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