Online Back-Parsing for AMR-to-Text Generation
Xuefeng Bai, Linfeng Song, Yue Zhang
Abstract
AMR-to-text generation aims to recover a text containing the same meaning as an input AMR graph. Current research develops increasingly powerful graph encoders to better represent AMR graphs, with decoders based on standard language modeling being used to generate outputs. We propose a decoder that back predicts projected AMR graphs on the target sentence during text generation. As the result, our outputs can better preserve the input meaning than standard decoders. Experiments on two AMR benchmarks show the superiority of our model over the previous state-of-the-art system based on graph Transformer.
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Install the CLIlune papers fulltext 3f26f19c-d188-41a6-8ec1-4e45b95186c1Cited by top-tier papers7
- AMR-based Network for Aspect-based Sentiment AnalysisFukun Ma, Xuming Hu, Aiwei Liu, Yawen Yang et al.ACL 2023 · 23 citations
- T-STAR: Truthful Style Transfer using AMR Graph as Intermediate RepresentationAnubhav Jangra, Preksha Nema, Aravindan RaghuveerEMNLP 2022 · 1 citation
- Cross-domain Generalization for AMR ParsingXuefeng Bai, Sen Yang, Leyang Cui, Linfeng Song et al.EMNLP 2022 · 1 citation
- Structural Adapters in Pretrained Language Models for AMR-to-Text GenerationLeonardo F. R. Ribeiro, Yue Zhang, Iryna GurevychEMNLP 2021
- XLPT-AMR: Cross-Lingual Pre-Training via Multi-Task Learning for Zero-Shot AMR Parsing and Text GenerationDongqin Xu, Junhui Li, Muhua Zhu, Min Zhang et al.ACL 2021
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