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Rosetta-LSF: an Aligned Corpus of French Sign Language and French for Text-to-Sign Translation

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

DOI:10.63317/28x9znhmna2p

Abstract

This article presents a new French Sign Language (LSF) corpus called “Rosetta-LSF”. It was created to support future studies on the automatic translation of written French into LSF, rendered through the animation of a virtual signer. An overview of the field highlights the importance of a quality representation of LSF. In order to obtain quality animations understandable by signers, it must surpass the simple “gloss transcription” of the LSF lexical units to use in the discourse. To achieve this, we designed a corpus composed of four types of aligned data, and evaluated its usability. These are: news headlines in French, translations of these headlines into LSF in the form of videos showing animations of a virtual signer, gloss annotations of the “traditional” type—although including additional information on the context in which each gestural unit is performed as well as their potential for adaptation to another context—and AZee representations of the videos, i.e. formal expressions capturing the necessary and sufficient linguistic information. This article describes this data, exhibiting an example from the corpus. It is available online for public research.

Details

Paper ID
lrec2022-main-529
Pages
pp. 4955-4962
BibKey
bertin-lemee-etal-2022-rosetta
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

  • EB

    Elise Bertin-Lemée

  • AB

    Annelies Braffort

  • CC

    Camille Challant

  • CD

    Claire Danet

  • BD

    Boris Dauriac

  • MF

    Michael Filhol

  • EM

    Emmanuella Martinod

  • JS

    Jérémie Segouat

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