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Adding Image Constraints to Inverse Kinematics for Human Motion Capture

机译:向逆运动学中添加图像约束以进行人体运动捕捉

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摘要

In order to study human motion in biomechanical applications, a critical component is to accurately obtain the 3D joint positions of the user's body. Computer vision and inverse kinematics are used to achieve this objective without markers or special devices attached to the body. The problem of these systems is that the inverse kinematics is “blinded” with respect to the projection of body segments into the images used by the computer vision algorithms. In this paper, we present how to add image constraints to inverse kinematics in order to estimate human motion. Specifically, we explain how to define a criterion to use images in order to guide the posture reconstruction of the articulated chain. Tests with synthetic images show how the scheme performs well in an ideal situation. In order to test its potential in real situations, more experiments with task specific image sequences are also presented. By means of a quantitative study of different sequences, the results obtained show how this approach improves the performance of inverse kinematics in this application.
机译:为了研究生物力学应用中的人体运动,关键组件是准确获取用户身体的3D关节位置。计算机视觉和反向运动学可用于实现此目标,而无需将标记或特殊设备连接到身体。这些系统的问题在于,逆运动学相对于将身体部分投影到计算机视觉算法所使用的图像中是“盲目的”。在本文中,我们介绍了如何在逆运动学中添加图像约束以估计人体运动。具体来说,我们解释了如何定义使用图像的准则,以指导关节链的姿势重建。用合成图像进行的测试显示了该方案在理想情况下的性能。为了在实际情况下测试其潜力,还介绍了针对特定任务的图像序列的更多实验。通过对不同序列的定量研究,获得的结果表明该方法如何提高此应用中逆运动学的性能。

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