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FREDSum: A Dialogue Summarization Corpus for French Political Debates

  • Linagora
  • École Polytechnique
  • Grenoble Ecole de Management

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Résumé

Recent advances in deep learning, and especially the invention of encoder-decoder architectures, has significantly improved the performance of abstractive summarization systems. The majority of research has focused on written documents, however, neglecting the problem of multi-party dialogue summarization. In this paper, we present a dataset of French political debates for the purpose of enhancing resources for multi-lingual dialogue summarization. Our dataset consists of manually transcribed and annotated political debates, covering a range of topics and perspectives. We highlight the importance of high quality transcription and annotations for training accurate and effective dialogue summarization models, and emphasize the need for multilingual resources to support dialogue summarization in non-English languages. We also provide baseline experiments using state-of-the-art methods, and encourage further research in this area to advance the field of dialogue summarization. Our dataset will be made publicly available for use by the research community.

langue originaleAnglais
titreFindings of the Association for Computational Linguistics
Sous-titreEMNLP 2023
EditeurAssociation for Computational Linguistics (ACL)
Pages4241-4253
Nombre de pages13
ISBN (Electronique)9798891760615
Les DOIs
étatPublié - 1 janv. 2023
Modification externeOui
Evénement2023 Findings of the Association for Computational Linguistics: EMNLP 2023 - Hybrid, Singapour
Durée: 6 déc. 202310 déc. 2023

Série de publications

NomFindings of the Association for Computational Linguistics: EMNLP 2023

Une conférence

Une conférence2023 Findings of the Association for Computational Linguistics: EMNLP 2023
Pays/TerritoireSingapour
La villeHybrid
période6/12/2310/12/23

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