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Papers/AMR Parsing via Graph-Sequence Iterative Inference

AMR Parsing via Graph-Sequence Iterative Inference

Deng Cai, Wai Lam

2020-04-12ACL 2020 6AMR ParsingLanguage Modelling
PaperPDFCode(official)CodeCode

Abstract

We propose a new end-to-end model that treats AMR parsing as a series of dual decisions on the input sequence and the incrementally constructed graph. At each time step, our model performs multiple rounds of attention, reasoning, and composition that aim to answer two critical questions: (1) which part of the input \textit{sequence} to abstract; and (2) where in the output \textit{graph} to construct the new concept. We show that the answers to these two questions are mutually causalities. We design a model based on iterative inference that helps achieve better answers in both perspectives, leading to greatly improved parsing accuracy. Our experimental results significantly outperform all previously reported \textsc{Smatch} scores by large margins. Remarkably, without the help of any large-scale pre-trained language model (e.g., BERT), our model already surpasses previous state-of-the-art using BERT. With the help of BERT, we can push the state-of-the-art results to 80.2\% on LDC2017T10 (AMR 2.0) and 75.4\% on LDC2014T12 (AMR 1.0).

Results

TaskDatasetMetricValueModel
Semantic ParsingLDC2014T12F1 Full75.4AMR Parsing via Graph-Sequence Iterative Inference
Semantic ParsingLDC2017T10Smatch80.2Cai and Lam
AMR ParsingLDC2014T12F1 Full75.4AMR Parsing via Graph-Sequence Iterative Inference
AMR ParsingLDC2017T10Smatch80.2Cai and Lam

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