Papers › ATP: AMRize Then Parse! Enhancing AMR Parsing with PseudoAMRs

ATP: AMRize Then Parse! Enhancing AMR Parsing with PseudoAMRs

19 Apr 2022Findings (NAACL) 2022 7arXiv:2204.08875archive 2025-07-28

Liang Chen, Peiyi Wang, Runxin Xu, Tianyu Liu, Zhifang Sui, Baobao Chang

As Abstract Meaning Representation (AMR) implicitly involves compound semantic annotations, we hypothesize auxiliary tasks which are semantically or formally related can better enhance AMR parsing. We find that 1) Semantic role labeling (SRL) and dependency parsing (DP), would bring more performance gain than other tasks e.g. MT and summarization in the text-to-AMR transition even with much less data. 2) To make a better fit for AMR, data from auxiliary tasks should be properly "AMRized" to PseudoAMR before training. Knowledge from shallow level parsing tasks can be better transferred to AMR Parsing with structure transform. 3) Intermediate-task learning is a better paradigm to introduce auxiliary tasks to AMR parsing, compared to multitask learning. From an empirical perspective, we propose a principled method to involve auxiliary tasks to boost AMR parsing. Extensive experiments show that our method achieves new state-of-the-art performance on different benchmarks especially in topology-related scores.

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Code

chenllliang/atp officialmentioned in papermentioned on GitHubpytorch report
pkunlp-icler/atp officialmentioned in papermentioned on GitHubpytorch report

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Tasks

AMR ParsingAbstract Meaning RepresentationDependency ParsingSemantic Role Labeling

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
AMR Parsing LDC2017T10 ATP-SRL (Ensemble) Smatch 85.3 #7 of 27 Archive leaderboard report
AMR Parsing LDC2017T10 ATP-SRL Smatch 85.2 #8 of 27 Archive leaderboard report
AMR Parsing LDC2020T02 ATP-SRL Smatch 84.0 #7 of 13 Archive leaderboard report

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