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首页> 外文期刊>IEEE Transactions on Pattern Analysis and Machine Intelligence >Human Motion Tracking by Registering an Articulated Surface to 3D Points and Normals
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Human Motion Tracking by Registering an Articulated Surface to 3D Points and Normals

机译:通过将关节表面注册到3D点和法线来进行人体运动跟踪

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摘要

We address the problem of human motion tracking by registering a surface to 3-D data. We propose a method that iteratively computes two things: Maximum likelihood estimates for both the kinematic and free-motion parameters of an articulated object, as well as probabilities that the data are assigned either to an object part, or to an outlier cluster. We introduce a new metric between observed points and normals on one side, and a parameterized surface on the other side, the latter being defined as a blending over a set of ellipsoids. We claim that this metric is well suited when one deals with either visual-hull or visual-shape observations. We illustrate the method by tracking human motions using sparse visual-shape data (3-D surface points and normals) gathered from imperfect silhouettes.
机译:我们通过将表面注册到3-D数据来解决人体运动跟踪的问题。我们提出一种迭代计算两件事的方法:铰接对象的运动学参数和自由运动参数的最大似然估计,以及将数据分配给对象部分或异常值簇的概率。我们在一侧的观测点和法线之间引入了新的度量,在另一侧引入了参数化的表面,后者被定义为在一组椭球上的混合。我们声称,当人们处理视觉船体或视觉形状观测值时,此度量标准非常适合。我们通过使用从不完美的轮廓中收集的稀疏视觉形状数据(3-D表面点和法线)跟踪人体运动来说明该方法。

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