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Introducing RezoJDM16k: a French KnowledgeGraph DataSet for Link Prediction

Proceedings of the Thirteenth International Conference on Language Resources and Evaluation (LREC 2022)

DOI:10.63317/4pyg889ohqkv

Abstract

Knowledge graphs applications, in industry and academia, motivate substantial research directions towards large-scale information extraction from various types of resources. Nowadays, most of the available knowledge graphs are either in English or multilingual. In this paper, we introduce RezoJDM16k, a French knowledge graph dataset based on RezoJDM. With 16k nodes, 832k triplets, and 53 relation types, RezoJDM16k can be employed in many NLP downstream tasks for the French language such as machine translation, question-answering, and recommendation systems. Moreover, we provide strong knowledge graph embedding baselines that are used in link prediction tasks for future benchmarking. Compared to the state-of-the-art English knowledge graph datasets used in link prediction, RezoJDM16k shows a similar promising predictive behavior.

Details

Paper ID
lrec2022-main-553
Pages
pp. 5163-5169
BibKey
mirzapour-etal-2022-introducing
Editor
N/A
Publisher
European Language Resources Association (ELRA)
ISSN
2522-2686
ISBN
79-10-95546-38-2
Conference
Thirteenth Language Resources and Evaluation Conference
Location
Marseille, France
Date
20 June 2022 25 June 2022

Authors

  • MM

    Mehdi Mirzapour

  • WR

    Waleed Ragheb

  • MS

    Mohammad Javad Saeedizade

  • KC

    Kevin Cousot

  • HJ

    Helene Jacquenet

  • LC

    Lawrence Carbon

  • ML

    Mathieu Lafourcade

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