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A primitive-based 3D segmentation algorithm for mechanical CAD models

机译:机械CAD模型的基于基元的3D分割算法

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This paper presents a novel segmentation algorithm for mechanical CAD models (represented by either mesh or point cloud) constructed from planes, cylinders, cones, spheres, tori and easily extendable to surfaces of revolution. Our proposed approach differs from existing techniques in the following aspects. First, by assuming that common mechanical models only have a limited number of dominant orientations that their primitives are either parallel or orthogonal to, we narrow down the search space for detecting the primitives to the automatically estimated major orientations of the input model. Second, we employ a dimension reduction method which transforms the problem of detecting 3D primitives into the classical 2D problems such as circle and line detection in images. Third, we generate an over-complete set of primitives and formulate the segmentation as a set cover optimization problem. We demonstrate our method's robustness to noise and show that it compares favorably with state-of-the-art solutions such as the RANSAC-based (Schnabel et al., 2007) and GlobFit (Li et al., 2011) approaches on many synthetic and real scanned examples.
机译:本文为机械CAD模型(由网格或点云表示)提供了一种新颖的分割算法,该算法由平面,圆柱体,圆锥体,球体,圆托构造而成,并且易于扩展到旋转曲面。我们提出的方法在以下方面与现有技术不同。首先,通过假设普通机械模型仅具有有限数量的与它们的图元平行或正交的主导方向,我们将用于检测图元的搜索空间缩小到自动估计的输入模型的主要方向。其次,我们采用降维方法将检测3D图元的问题转换为经典的2D问题,例如图像中的圆和线检测。第三,我们生成了一组不完整的基元,并将分段公式化为一组覆盖优化问题。我们证明了该方法对噪声的鲁棒性,并表明它与许多基于RANSAC的解决方案(Schnabel等,2007)和GlobFit(Li等,2011)方法相比在许多合成方法上具有优势。和真实的扫描示例。

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