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Hand Sign Recognition using Infrared Imagery Provided by Leap Motion Controller and Computer Vision

机译:使用跳跃运动控制器和计算机视觉提供的红外图像手册识别

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Speech Impairment and conversion of sign language to human re-engineered audio signals is something computer science has always been interested in. However, the architectural robustness and extraction of features on a very insignificant area of change have posed decade long problems to achieve this idea. The paper proposes a Convolutional Neural network based on a deep belief model on Data imagery collected by leap motion controllers on hand sign recognition. The database is composed of 10 different hand-gestures that were performed by 10 different subjects (5 men and 5 women) which is presented, composed by a set of near-infrared images acquired by the Leap Motion sensor. The paper tries to achieve high accuracy on the pertaining training set inorder to create and form a robust model. It embraces the first step towards image understanding of human signs and aid specially-abled people. We have implemented and tested the algorithm for 2000 images each class. The paper achieves the accuracy and precision of 99.4% and 99.68% respectively. The implications of the study intend to enhance understanding of infrared imagery for small areas of localization feature detection and intend to help the idea of human audio re-engineering a resurgence by using the same.
机译:语言障碍和手语的人重新设计的音频信号的转换是什么计算机科学一直感兴趣的东西。但是,建筑的坚固性和功能提取的变化非常显着区域已构成长达十年的问题,实现这个想法。本文提出了一种基于由手头标志识别飞跃运动控制器收集的数据的图像深信念模式卷积神经网络。该数据库是由通过其上呈现10名不同的受试者(5名男性,5名女性)中,由一组由跨越运动传感器所获取的近红外图像组成所执行的10个不同的手姿势。本文试图实现对有关训练集序高精度产生和形成稳健的模型。它包括对人的体征和辅助特制体健人图像理解的第一步。我们已经实现和测试的算法2000个图像中的每个类。纸张分别达到99.4%和99.68%的准确度和精确度。这项研究的意义打算加强本地化特征检测的小面积红外图像的理解,并打算使用相同的,以帮助人类声音重新设计的复兴的想法。

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