Dependency and Span, Cross-Style Semantic Role Labeling on PropBank and NomBank

November 07, 2019 ยท Declared Dead ยท ๐Ÿ› ACM Trans. Asian Low Resour. Lang. Inf. Process.

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Authors Zuchao Li, Hai Zhao, Junru Zhou, Kevin Parnow, Shexia He arXiv ID 1911.02851 Category cs.CL: Computation & Language Citations 5 Venue ACM Trans. Asian Low Resour. Lang. Inf. Process. Last Checked 5 months ago
Abstract
The latest developments in neural semantic role labeling (SRL) have shown great performance improvements with both the dependency and span formalisms/styles. Although the two styles share many similarities in linguistic meaning and computation, most previous studies focus on a single style. In this paper, we define a new cross-style semantic role label convention and propose a new cross-style joint optimization model designed around the most basic linguistic meaning of a semantic role, providing a solution to make the results of the two styles more comparable and allowing both formalisms of SRL to benefit from their natural connections in both linguistics and computation. Our model learns a general semantic argument structure and is capable of outputting in either style. Additionally, we propose a syntax-aided method to uniformly enhance the learning of both dependency and span representations. Experiments show that the proposed methods are effective on both span and dependency SRL benchmarks.
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