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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >A multi-view vision-based hand motion capturing system
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A multi-view vision-based hand motion capturing system

机译:基于多视角视觉的手势捕捉系统

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摘要

Vision-based hand motion capturing approaches play a critical role in human computer interface owing to its non-invasiveness, cost effectiveness, and user friendliness. This work presents a multi-view vision-based method to capture hand motion. A 3-D hand model with structural and kinematical constraints is developed to ensure that the proposed hand model behaves similar to an ordinary human hand. Human hand motion in a high degree of freedom space is estimated by developing a separable state based particle filtering (SSBPF) method to track the finger motion. By integrating different features, including silhouette, Chamfer distance, and depth map in different view angles, the proposed motion tracking system can capture the hand motion parameter effectively and solve the self-occlusion problem of the finger motion. Experimental results indicate that the hand joint angle estimation generates an average error of 11°.
机译:基于视觉的手势捕获方法由于其非侵入性,成本效益和用户友好性,在人机界面中起着至关重要的作用。这项工作提出了一种基于多视图视觉的方法来捕获手部动作。开发了具有结构和运动约束的3-D手模型,以确保提出的手模型的行为与普通人的手相似。通过开发基于可分离状态的粒子滤波(SSBPF)方法来跟踪手指运动,可以估计高自由度空间中的人手运动。通过整合不同角度的轮廓,倒角距离和深度图等不同特征,该运动跟踪系统可以有效地捕获手部运动参数,解决手指运动的自闭问题。实验结果表明,手关节角度估计会产生11°的平均误差。

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