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DTW-Based Gait Recognition from Recovered 3-D Joint Angles and Inter-ankle Distance

机译:基于DTW的步态识别来自恢复的3-D关节角度和踝关节间距

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We present a view independent approach for 3D human gait recognition. The identification of the person is done on the basis of motion estimated by our marker-less 3D motion tracking algorithm. We show tracking performance using ground-truth data acquired by Vicon motion capture system. The identification is achieved by dynamic time warping using both joint angles and inter-joint distances. We show how to calculate approximate Euclidean distance metric between two sets of Euler angles. We compare the correctly classified ratio obtained by DTW built on unit quaternion distance metric and such an Euler angle distance metric. We then show that combining the rotation distances with inter-ankle distances and other person attributes like height leads to considerably better correctly classified ratio.
机译:我们提出了一种观点的3D人体步态认可的独立方法。基于我们的标记3D运动跟踪算法估计的运动来完成该人的识别。我们使用Vicon Motion Capture System获取的地面真实数据显示跟踪性能。通过使用关节角度和关节间距的动态时间翘曲来实现识别。我们展示了如何计算两组欧拉角之间的近似欧几里德距离度量。我们比较DTW基于单位四元数距离度量和这种欧拉角度距离度量获得的正确分类比率。然后,我们表明将旋转距离与踝部间距和其他人属性相结合,如高度相当于正确的正确分类比率。

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