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Including Signed Languages in Natural Language Processing

机译:包括自然语言处理中的签名语言

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Signed languages are the primary means of communication for many deaf and hard of hearing individuals. Since signed languages exhibit all the fundamental linguistic properties of natural language, we believe that tools and theories of Natural Language Processing (NLP) are crucial towards its modeling. However, existing research in Sign Language Processing (SLP) seldom attempt to explore and leverage the linguistic organization of signed languages. This position paper calls on the NLP community to include signed languages as a research area with high social and scientific impact. We first discuss the linguistic properties of signed languages to consider during their modeling. Then, we review the limitations of current SLP models and identify the open challenges to extend NLP to signed languages. Finally, we urge (1) the adoption of an efficient tokenization method; (2) the development of linguistically-informed models; (3) the collection of real-world signed language data; (4) the inclusion of local signed language communities as an active and leading voice in the direction of research.
机译:签名语言是许多聋人和听力人员难以沟通的主要方式。由于签名语言表现出自然语言的所有基本语言性质,因此我们认为自然语言处理(NLP)的工具和理论对其建模至关重要。然而,现有的标志语言处理研究(SLP)很少尝试探索和利用签名语言的语言组织。该职位涉及NLP社区,包括作为具有高社会和科学影响的研究领域的签名语言。我们首先讨论在建模期间考虑签名语言的语言特性。然后,我们审查当前SLP模型的局限性,并确定将NLP扩展到签名语言的开放挑战。最后,我们敦促(1)采用有效的销料方法; (2)发展语言信息的模型; (3)集合现实世界签名语言数据; (4)将当地签署的语言社区列入研究方向的积极和领先的声音。

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