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Nonrigid iterative closest points for registration of 3D biomedical surfaces

机译:用于注册3D生物医学表面的非刚性迭代最近点

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Advanced 3D optical and laser scanners bring new challenges to computer graphics. We present a novel non-rigid surface registration algorithm based on Iterative Closest Point (ICP) method with multiple correspondences. Our method, called the Nonrigid Iterative Closest Points (NICPs), can be applied to surfaces of arbitrary topology. It does not impose any restrictions on the deformation, e.g. rigidity or articulation. Finally, it does not require parametrization of input meshes. Our method is based on an objective function that combines distance and regularization terms. Unlike the standard ICP, the distance term is determined based on multiple two-way correspondences rather than single one-way correspondences between surfaces. A Laplacian-based regularization term is proposed to take full advantage of multiple two-way correspondences. This term regularizes the surface movement by enforcing vertices to move coherently with their 1-ring neighbors. The proposed method achieves good performances when no global pose differences or significant amount of bending exists in the models, for example, families of similar shapes, like human femur and vertebrae models. (C) 2017 Elsevier Ltd. All rights reserved.
机译:先进的3D光学和激光扫描仪给计算机图形学带来了新的挑战。我们提出了一种基于具有多个对应关系的迭代最近点(ICP)方法的新颖的非刚性表面配准算法。我们的方法称为非刚性迭代最近点(NICP),可以应用于任意拓扑的表面。它不对变形施加任何限制,例如。刚度或清晰度。最后,它不需要输入网格的参数化。我们的方法基于结合距离和正则项的目标函数。与标准ICP不同,该距离项是根据表面之间的多个双向对应关系而不是单个单向对应关系确定的。提出了一个基于拉普拉斯算式的正则化项,以充分利用多个双向对应关系。该术语通过强制顶点与其1环相邻节点连贯地移动来规范表面移动。当模型中不存在整体姿势差异或大量弯曲时,例如人类股骨和椎骨模型之类的形状相似的家庭,该方法将获得良好的性能。 (C)2017 Elsevier Ltd.保留所有权利。

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