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Towards an Automatic Annotation of French Sign Language Videos: Detection of Lexical Signs

机译:走向法语手语视频的自动注释:词汇符号的检测

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This paper presents an approach towards an automatic annotation system for French Sign Language (LSF). Such automation aims to reduce the processing time and the subjectivity of manual annotations done by linguists in order to study the sign language and simplify indexing for automatic signs recognition. The described system uses face and body keypoints collected from 2D RGB standard LSF videos. A naive Bayesian model was built to classify gestural units using the collected keypoints as features. We started from the observation that, for many signers, the production of lexical signs is very often accompanied by mouthing. Effectively, the results showed that the system is capable of detecting lexical signs, with highest success rate, using only information about mouthing and head direction.
机译:本文提出了一种针对法国手语(LSF)的自动注释系统的方法。这种自动化的目的是减少语言学家完成的手工注释的处理时间和主观性,以便研究手语并简化索引以进行自动标志识别。所描述的系统使用从2D RGB标准LSF视频收集的面部和身体关键点。建立了朴素的贝叶斯模型,以收集的关键点为特征对手势单元进行分类。我们从观察开始,对于许多签名者来说,词汇符号的产生通常伴随着口头表达。有效地,结果表明该系统仅使用有关嘴巴和头部方向的信息就能够以最高的成功率检测词汇符号。

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