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Papers/Multitask Parsing Across Semantic Representations

Multitask Parsing Across Semantic Representations

Daniel Hershcovich, Omri Abend, Ari Rappoport

2018-05-01ACL 2018 7Semantic ParsingUCCA Parsing
PaperPDFCode(official)

Abstract

The ability to consolidate information of different types is at the core of intelligence, and has tremendous practical value in allowing learning for one task to benefit from generalizations learned for others. In this paper we tackle the challenging task of improving semantic parsing performance, taking UCCA parsing as a test case, and AMR, SDP and Universal Dependencies (UD) parsing as auxiliary tasks. We experiment on three languages, using a uniform transition-based system and learning architecture for all parsing tasks. Despite notable conceptual, formal and domain differences, we show that multitask learning significantly improves UCCA parsing in both in-domain and out-of-domain settings.

Results

TaskDatasetMetricValueModel
Semantic ParsingSemEval 2019 Task 1English-20K (open) F168.4Transition-based + MTL
Semantic ParsingSemEval 2019 Task 1English-Wiki (open) F173.5Transition-based + MTL

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