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Better Sign Language Translation with STMC-Transformer

  • Carnegie Mellon University

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137 Citations (Scopus)

Résumé

Sign Language Translation (SLT) first uses a Sign Language Recognition (SLR) system to extract sign language glosses from videos. Then, a translation system generates spoken language translations from the sign language glosses. This paper focuses on the translation system and introduces the STMC-Transformer which improves on the current state-of-the-art by over 5 and 7 BLEU respectively on gloss-to-text and video-to-text translation of the PHOENIX-Weather 2014T dataset. On the ASLG-PC12 corpus, we report an increase of over 16 BLEU. We also demonstrate the problem in current methods that rely on gloss supervision. The video-to-text translation of our STMC-Transformer outperforms translation of GT glosses. This contradicts previous claims that GT gloss translation acts as an upper bound for SLT performance and reveals that glosses are an inefficient representation of sign language. For future SLT research, we therefore suggest an end-to-end training of the recognition and translation models, or using a different sign language annotation scheme.

langue originaleAnglais
titreCOLING 2020 - 28th International Conference on Computational Linguistics, Proceedings of the Conference
rédacteurs en chefDonia Scott, Nuria Bel, Chengqing Zong
EditeurAssociation for Computational Linguistics (ACL)
Pages5975-5989
Nombre de pages15
ISBN (Electronique)9781952148279
Les DOIs
étatPublié - 1 janv. 2020
Evénement28th International Conference on Computational Linguistics, COLING 2020 - Virtual, Online, Espagne
Durée: 8 déc. 202013 déc. 2020

Série de publications

NomCOLING 2020 - 28th International Conference on Computational Linguistics, Proceedings of the Conference

Une conférence

Une conférence28th International Conference on Computational Linguistics, COLING 2020
Pays/TerritoireEspagne
La villeVirtual, Online
période8/12/2013/12/20

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