SOM-based hand gesture recognition for virtual interactions

Shuai Jin, Yi Li, Guangming Lu, Jian-xun Luo, Weidong Chen, Xiaoxiang Zheng
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引用次数: 18

Abstract

In nowadays, hand gestures can be used as a more natural and convenient way for human computer interaction. The direct interface of hand gestures provides us a new way for communicating with the virtual environment. In this paper, we propose a new hand gesture recognition method using self-organizing map (SOM) with datagloves. The SOM method is a type of machine learning algorithm. It deals with the raw data sampled from datagloves as input vectors, and builds a mapping between these uncalibrated data and gesture commands. The results show the average recognition rate and time efficiency when using SOM for dataglove-based hand gesture recognition. A series of tasks in virtual house illustrate the performance of our interaction method based on hand gesture recognition.
基于som的虚拟交互手势识别
如今,手势作为一种更自然、更方便的人机交互方式。手势的直接界面为我们与虚拟环境的交流提供了一种新的方式。本文提出了一种基于数据集的自组织映射(SOM)的手势识别方法。SOM方法是一种机器学习算法。它处理从dataglove中采样的原始数据作为输入向量,并在这些未校准数据和手势命令之间建立映射。结果表明,SOM在基于数据集的手势识别中具有平均识别率和时间效率。虚拟房屋中的一系列任务验证了我们基于手势识别的交互方法的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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