Neural Machine Translation Methods for Translating Text to Sign Language Glosses
Dele Zhu, Vera Czehmann, Eleftherios Avramidis
摘要
State-of-the-art techniques common to low resource Machine Translation (MT) are applied to improve MT of spoken language text to Sign Language (SL) glosses. In our experiments, we improve the performance of the transformer-based models via (1) data augmentation, (2) semi-supervised Neural Machine Translation (NMT), (3) transfer learning and (4) multilingual NMT. The proposed methods are implemented progressively on two German SL corpora containing gloss annotations. Multilingual NMT combined with data augmentation appear to be the most successful setting, yielding statistically significant improvements as measured by three automatic metrics (up to over 6 points BLEU), and confirmed via human evaluation. Our best setting outperforms all previous work that report on the same test-set and is also confirmed on a corpus of the American Sign Language (ASL).
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引用它的顶会 Paper2
- Towards AI-driven Sign Language Generation with Non-manual MarkersHan Zhang, Rotem Shalev-Arkushin, Vasileios Baltatzis, Connor Gillis 等CHI 2025 · 被引用 12 次
- Semi-Supervised Spoken Language GlossificationHuijie Yao, Wengang Zhou, Hao Zhou, Houqiang LiACL 2024
它引用的顶会 Paper2
- Two-Stream Network for Sign Language Recognition and TranslationYutong Chen, Ronglai Zuo, Fangyun Wei, Yu Wu 等NeurIPS 2022 · 被引用 288 次
- Signing at Scale: Learning to Co-Articulate Signs for Large-Scale Photo-Realistic Sign Language ProductionBen Saunders, Necati Cihan Camgöz, Richard BowdenCVPR 2022 · 被引用 64 次
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