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A real-time gesture recognition system using near-infrared imagery

机译:使用近红外图像的实时手势识别系统

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摘要

Visual hand gesture recognition systems are promising technologies for Human Computer Interaction, as they allow a more immersive and intuitive interaction. Most of these systems are based on the analysis of skeleton information, which is in turn inferred from color, depth, or near-infrared imagery. However, the robust extraction of skeleton information from images is only possible for a subset of hand poses, which restricts the range of gestures that can be recognized. In this paper, a real-time hand gesture recognition system based on a near-infrared device is presented, which directly analyzes the infrared imagery to infer static and dynamic gestures, without using skeleton information. Thus, a much wider range of hand gestures can be recognized in comparison with skeleton-based approaches. To validate the proposed system, a new dataset of near-infrared imagery has been created, from which good results that outperform other state-of-the-art strategies have been obtained.
机译:视觉手势识别系统是人机交互的有前途的技术,因为它们可以实现更身临其境且直观的交互。这些系统中的大多数都是基于对骨架信息的分析,而骨架信息又是从颜色,深度或近红外图像中推断出来的。但是,仅对于手势的子集,才有可能从图像中可靠地提取骨骼信息,这限制了可识别手势的范围。本文提出了一种基于近红外设备的实时手势识别系统,该系统无需使用骨骼信息就可以直接分析红外图像以推断出静态和动态手势。因此,与基于骨骼的方法相比,可以识别出更大范围的手势。为了验证所提出的系统,创建了一个新的近红外图像数据集,从中获得了优于其他最新技术的良好结果。

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