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Symmetry Detection Using Feature Lines

机译:使用特征线的对称性检测

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摘要

In this paper, we describe a new algorithm for detecting structural redundancy in geometric data sets. Our algorithm computes rigid symmetries, i.e., subsets of a surface model that reoccur several times within the model differing only by translation, rotation or mirroring. Our algorithm is based on matching locally coherent constellations of feature lines on the object surfaces. In comparison to previous work, the new algorithm is able to detect a large number of symmetric parts without restrictions to regular patterns or nested hierarchies. In addition, working on relevant features only leads to a strong reduction in memory and processing costs such that very large data sets can be handled. We apply the algorithm to a number of real world 3D scanner data sets, demonstrating high recognition rates for general patterns of symmetry.
机译:在本文中,我们描述了一种用于检测几何数据集中的结构冗余的新算法。我们的算法计算刚性对称性,即表面模型的子集在模型中重复出现几次,仅通过平移,旋转或镜像而不同。我们的算法基于匹配对象表面上特征线的局部相干星座。与以前的工作相比,该新算法能够检测大量对称零件,而不受规则模式或嵌套层次结构的限制。此外,使用相关功能只会大大减少内存和处理成本,从而可以处理非常大的数据集。我们将该算法应用于许多现实世界中的3D扫描仪数据集,证明了对一般对称模式的识别率很高。

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