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The Alignment Between 3-D Data and Articulated Shapes with Bending Surfaces

机译:3-D数据与弯曲表面的铰接形状对齐

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In this paper we address the problem of aligning 3-D data with articulated shapes. This problem resides at the core of many motion tracking methods with applications in human motion capture, action recognition, medical-image analysis, etc. We describe an articulated and bending surface representation well suited for this task as well as a method which aligns (or registers) such a surface to 3-D data. Articulated objects, e.g., humans and animals, are covered with clothes and skin which may be seen as textured surfaces. These surfaces are both articulated and deformable and one realistic way to model them is to assume that they bend in the neighborhood of the shape’s joints. We will introduce a surface-bending model as a function of the articulated-motion parameters. This combined articulated-motion and surface-bending model better predicts the observed phenomena in the data and therefore is well suited for surface registration. Given a set of sparse 3-D data (gathered with a stereo camera pair) and a textured, articulated, and bending surface, we describe a register-and-fit method that proceeds as follows. First, the data-to-surface registration problem is formalized as a classifier and is carried out using an EM algorithm. Second, the data-to-surface fitting problem is carried out by minimizing the distance from the registered data points to the surface over the joint variables. In order to illustrate the method we applied it to the problem of hand tracking. A hand model with 27 degrees of freedom is successfully registered and fitted to a sequence of 3-D data points gathered with a stereo camera pair.
机译:在本文中,我们解决了用铰接形状对准3-D数据的问题。这个问题驻留在许多运动跟踪方法的核心,其中具有人体运动捕获,动作识别,医学图像分析等的应用。我们描述了适合该任务的铰接和弯曲表面表示以及对准的方法(或寄存器)这样的表面到3-D数据。铰接物体,例如人类和动物,覆盖有衣服和皮肤,其可以被视为纹理表面。这些表面都是铰接和变形的,并且模拟它们的一种现实方式是假设它们在形状的关节的邻域中弯曲。我们将作为铰接运动参数的函数引入一个表面弯曲模型。这种组合的铰接运动和表面弯曲模型更好地预测数据中观察到的现象,因此非常适合表面配准。给定一组稀疏的3-D数据(用立体相机对收集)和纹理,铰接和弯曲表面,我们描述了一种如下所进行的寄存器和拟合方法。首先,数据到曲面注册问题被形式化为分类器,并使用EM算法进行。其次,通过最小化与关节变量通过从登记数据点到表面的距离来执行数据到表面拟合问题。为了说明我们将其应用于手动跟踪问题的方法。具有27度自由度的手模型成功登记并安装到与立体声相机对收集的3-D数据点序列。

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