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An Incremental Parser for Abstract Meaning Representation

About

Meaning Representation (AMR) is a semantic representation for natural language that embeds annotations related to traditional tasks such as named entity recognition, semantic role labeling, word sense disambiguation and co-reference resolution. We describe a transition-based parser for AMR that parses sentences left-to-right, in linear time. We further propose a test-suite that assesses specific subtasks that are helpful in comparing AMR parsers, and show that our parser is competitive with the state of the art on the LDC2015E86 dataset and that it outperforms state-of-the-art parsers for recovering named entities and handling polarity.

Marco Damonte, Shay B. Cohen, Giorgio Satta• 2016

Related benchmarks

TaskDatasetResultRank
AMR parsingLDC2014T12 (Full)
F1 Score66
32
AMR parsingLDC2015E86 (test)
F1 Score64
21
AMR parsingLDC2015E86 R1 (test)
Smatch64
6
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