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Robust feature detection and local classification for surfaces based on moment analysis

机译:基于力矩分析的鲁棒特征检测和局部分类

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The stable local classification of discrete surfaces with respect to features such as edges and corners or concave and convex regions, respectively, is as quite difficult as well as indispensable for many surface processing applications. Usually, the feature detection is done via a local curvature analysis. If concerned with large triangular and irregular grids, e.g., generated via a marching cube algorithm, the detectors are tedious to treat and a robust classification is hard to achieve. Here, a local classification method on surfaces is presented which avoids the evaluation of discretized curvature quantities. Moreover, it provides an indicator for smoothness of a given discrete surface and comes together with a built-in multiscale. The proposed classification tool is based on local zero and first moments on the discrete surface. The corresponding integral quantities are stable to compute and they give less noisy results compared to discrete curvature quantities. The stencil width for the integration of the moments turns out to be the scale parameter. Prospective surface processing applications are the segmentation on surfaces, surface comparison, and matching and surface modeling. Here, a method for feature preserving fairing of surfaces is discussed to underline the applicability of the presented approach.
机译:对于诸如边缘和拐角或凹凸区域之类的特征,对离散表面进行稳定的局部分类是相当困难的,对于许多表面处理应用来说也是必不可少的。通常,特征检测是通过局部曲率分析完成的。如果涉及例如通过行进立方体算法生成的大三角形和不规则网格,则检测器难以处理并且难以实现鲁棒的分类。在此,提出了一种在表面上的局部分类方法,该方法避免了离散曲率量的评估。此外,它为给定离散表面的光滑度提供指示器,并与内置多刻度一起使用。提出的分类工具基于离散表面上的局部零矩和一阶矩。相应的积分量可以稳定地计算,并且与离散曲率量相比,它们给出的噪点更少。力矩积分的模板宽度原来是比例参数。预期的曲面处理应用程序是曲面分割,曲面比较以及匹配和曲面建模。在此,讨论了一种用于保留曲面特征的方法,以强调所提出方法的适用性。

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