Geometric surface smoothing via anisotropic diffusion of normals

T. Tasdizen, R. Whitaker, P. Burchard, S. Osher
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引用次数: 262

Abstract

This paper introduces a method for smoothing complex, noisy surfaces, while preserving (and enhancing) sharp, geometric features. It has two main advantages over previous approaches to feature preserving surface smoothing. First is the use of level set surface models, which allows us to process very complex shapes of arbitrary and changing topology. This generality makes it well suited for processing surfaces that are derived directly from measured data. The second advantage is that the proposed method derives from a well-founded formulation, which is a natural generalization of anisotropic diffusion, as used in image processing. This formulation is based on the proposition that the generalization of image filtering entails filtering the normals of the surface, rather than processing the positions of points on a mesh.
几何表面平滑通过各向异性扩散的法线
本文介绍了一种平滑复杂、有噪声表面的方法,同时保留(并增强)尖锐的几何特征。与以前的方法相比,它具有两个主要优点。首先是使用水平集表面模型,它允许我们处理任意和变化拓扑的非常复杂的形状。这种通用性使其非常适合处理直接从测量数据中导出的表面。第二个优点是,所提出的方法源于一个有充分根据的公式,这是一个自然推广的各向异性扩散,用于图像处理。这个公式是基于这样一个命题,即图像滤波的泛化需要过滤表面的法线,而不是处理网格上点的位置。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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