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Sign Languague Recognition Without Frame-Sequencing Constraints: A Proof of Concept on the Argentinian Sign Language

机译:没有帧排序约束的手语识别:阿根廷手语的概念证明

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Automatic sign language recognition (SLR) is an important topic within the areas of human-computer interaction and machine learning. On the one hand, it poses a complex challenge that requires the intervention of various knowledge areas, such as video processing, image processing, intelligent systems and linguistics. On the other hand, robust recognition of sign language could assist in the translation process and the integration of hearing-impaired people, as well as the teaching of sign language for the hearing population. SLR systems usually employ Hidden Markov Models, Dynamic Time Warping or similar models to recognize signs. Such techniques exploit the sequential ordering of frames to reduce the number of hypothesis. This paper presents a general probabilistic model for sign classification that combines sub-classifiers based on different types of features such as position, movement and handshape. The model employs a bag-of-words approach in all classification steps, to explore the hypothesis that ordering is not essential for recognition. The proposed model achieved an accuracy rate of 97 % on an Argentinian Sign Language dataset containing 64 classes of signs and 3200 samples, providing some evidence that indeed recognition without ordering is possible.
机译:自动手语识别(SLR)是人机交互和机器学习领域中的重要主题。一方面,它提出了一个复杂的挑战,需要干预各种知识领域,例如视频处理,图像处理,智能系统和语言学。另一方面,对手语的强大识别可以帮助翻译过程和听力受损人士的融合,以及为听力人群教授手语。 SLR系统通常采用隐马尔可夫模型,动态时间规整或类似模型来识别信号。这样的技术利用帧的顺序排序来减少假设的数量。本文提出了一种用于符号分类的通用概率模型,该模型结合了基于不同类型特征(例如位置,运动和手形)的子分类器。该模型在所有分类步骤中均采用了词袋法,以探索排序对于识别并非必不可少的假设。所提出的模型在包含64种符号和3200个样本的阿根廷手语数据集上实现了97%的准确率,这提供了一些证据,表明无需排序就可以实现识别。

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