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Structured Discourse Representation for Factual Consistency Verification

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Résumé

Analysing the differences in how events are represented across texts, or verifying whether the language model generations hallucinate, requires the ability to systematically compare their content. To support such comparison, structured representation that captures fine-grained information plays a vital role. In particular, identifying distinct atomic facts and the discourse relations connecting them enables deeper semantic comparison. Our proposed approach combines structured discourse information extraction with a classifier, FDSpotter, for factual consistency verification. We show that adversarial discourse relations pose challenges for language models, but fine-tuning on our annotated data, DiscInfer, achieves competitive performance. Our proposed approach advances factual consistency verification by grounding in linguistic structure and decomposing it into interpretable components. We demonstrate the effectiveness of our method on the evaluation of two tasks: data-to-text generation and text summarisation. Our code and dataset will be publicly available on GitHub.

langue originaleAnglais
titreFindings of the Association for Computational Linguistics
Sous-titreACL 2025
rédacteurs en chefWanxiang Che, Joyce Nabende, Ekaterina Shutova, Mohammad Taher Pilehvar
EditeurAssociation for Computational Linguistics (ACL)
Pages820-838
Nombre de pages19
ISBN (Electronique)9798891762565
Les DOIs
étatPublié - 1 janv. 2025
Evénement63rd Annual Meeting of the Association for Computational Linguistics, ACL 2025 - Vienna, Autriche
Durée: 27 juil. 20251 août 2025

Série de publications

NomProceedings of the Annual Meeting of the Association for Computational Linguistics
ISSN (imprimé)0736-587X

Une conférence

Une conférence63rd Annual Meeting of the Association for Computational Linguistics, ACL 2025
Pays/TerritoireAutriche
La villeVienna
période27/07/251/08/25

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