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Talking with signs A simple method to detect nouns and numbers in a non-annotated signs language corpus

机译:与签署签署是一种简单的方法,可以在非注释的标志语言语料库中检测名词和数字

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People with deafness or hearing disabilities who aim to use computer based systems rely on state-of-art video classification and human action recognition techniques that combine traditional movement pattern recognition and deep learning techniques. In this work we present a pipeline for semi-automatic video annotation applied to a non-annotated Peruvian Signs Language (PSL) corpus along with a novel method for a progressive detection of PSL elements (nSDm). We produced a set of video annotations indicating signs appearances for a small set of nouns and numbers along with a labeled PSL dataset (PSL dataset). A model obtained after ensemble a 2D CNN trained with movement patterns extracted from the PSL dataset using Lucas Kanade Opticalflow, and a RNN with LSTM cells trained with raw RGB frames extracted from the PSL dataset reporting state-of-art results over the PSL dataset on signs classification tasks in terms of AUC, Precision and Recall.
机译:患有耳聋或听力残疾的人们旨在使用基于计算机的系统依赖于最先进的视频分类和人类行动识别技术,这些技术结合了传统的运动模式识别和深度学习技术。 在这项工作中,我们介绍了应用于非注释的秘鲁标志语言(PSL)语料库的半自动视频注释的管道以及用于PSL元素(NSDM)的逐步检测的新方法。 我们制作了一组视频注释,指示一小组名词和数字的标志出现,以及标记的PSL数据集(PSL数据集)。 在使用从PSL数据集中提取的运动模式培训之后获得的模型,使用LUCAS KANADE FLOUNTFLOW,以及带有从PSL数据集提取的原始RGB帧训练的LSTM单元的RNN,报告最先进的PSL数据集 签署AUC,精密和召回方面的分类任务。

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