2022
DOI: 10.48550/arxiv.2203.09679
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Modeling Intensification for Sign Language Generation: A Computational Approach

Abstract: End-to-end sign language generation models do not accurately represent the prosody in sign language. A lack of temporal and spatial variations leads to poor-quality generated presentations that confuse human interpreters. In this paper, we aim to improve the prosody in generated sign languages by modeling intensification in a data-driven manner. We present different strategies grounded in linguistics of sign language that inform how intensity modifiers can be represented in gloss annotations. To employ our str… Show more

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