Human-virtual human interaction by upper body gesture understanding

Yang Xiao, Junsong Yuan, D. Thalmann
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引用次数: 33

Abstract

In this paper, a novel human-virtual human interaction system is proposed. This system supports a real human to communicate with a virtual human using natural body language. Meanwhile, the virtual human is capable of understanding the meaning of human upper body gestures and reacting with its own personality by the means of body action, facial expression and verbal language simultaneously. In total, 11 human upper body gestures with and without human-object interaction are currently involved in the system. They can be characterized by human head, hand and arm posture. In our system implementation, the wearable Immersion CyberGlove II is used to capture the hand posture and the vision-based Microsoft Kinect takes charge of capturing the head and arm posture. This is a new sensor solution for human-gesture capture, and can be regarded as the most important contribution of this paper. Based on the posture data from the CyberGlove II and the Kinect, an effective and real-time human gesture recognition algorithm is also proposed. To verify the effectiveness of the gesture recognition method, we build a human gesture sample dataset. Additionally, the experiments demonstrate that our algorithm can recognize human gestures with high accuracy in real time.
通过上身手势理解的人-虚拟人互动
本文提出了一种新型的人-虚拟人机交互系统。该系统支持真人与虚拟人使用自然的肢体语言进行交流。同时,虚拟人能够同时通过肢体动作、面部表情和言语语言来理解人类上半身手势的含义,并以自己的个性做出反应。目前,该系统总共涉及11种人类上半身手势,无论是否与人-物体交互。它们的特征是人的头、手和手臂的姿势。在我们的系统实现中,可穿戴式沉浸式CyberGlove II用于捕捉手部姿势,基于视觉的微软Kinect负责捕捉头部和手臂姿势。这是一种新的人体手势捕捉传感器解决方案,是本文最重要的贡献。基于CyberGlove II和Kinect的姿态数据,提出了一种有效的实时人体手势识别算法。为了验证手势识别方法的有效性,我们建立了一个人类手势样本数据集。此外,实验表明,该算法能够以较高的准确率实时识别人体手势。
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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