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Rough Interface Reconstruction Using the Level Set Method

机译:使用级别集方法进行的粗糙接口重构

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摘要

We present a new level set method for reconstructing interfaces from point aggregations. Although level-set-based methods are advantageous because they can handle complicated topologies and noisy data, most tend to smooth the inherent roughness of the original data. Our objective is to enhance the quality of a reconstructed surface by preserving certain roughness-related characteristics of the original dataset. Our formulation employs the total variation of the surface as a roughness measure. The algorithm consists of two steps: a roughness-capturing flow and a roughness-preserving flow. The roughness capturing step attempts to construct a surface for which the original roughness is captured � distance flow is well suited for roughness capturing. Surface reconstruction is enhanced by using a total variation preserving (TVP) scheme for the roughness-preserving flow. The shock filter formulation of Osher and Rudin is exploited to achieve this goal. In practice, we have found that better results areobtained by balancing the TVP term with a smoothing term based on curvature. The algorithm is applied to both fractal surface growth simulations and scanned data sets to demonstrate the efficacy of our approach.
机译:我们提出了一种新的水平集方法,用于从点聚合中重建接口。尽管基于级别集的方法具有优势,因为它们可以处理复杂的拓扑结构和嘈杂的数据,但大多数方法都倾向于平滑原始数据的固有粗糙度。我们的目标是通过保留原始数据集的某些与粗糙度相关的特性来提高重建表面的质量。我们的配方采用表面的总变化作为粗糙度量度。该算法包括两个步骤:粗糙度捕获流和粗糙度保持流。粗糙度捕获步骤尝试构建一个表面,以捕获原始粗糙度-距离流非常适合粗糙度捕获。通过使用总变化保留(TVP)方案来保留粗糙度,可以增强表面重建。 Osher和Rudin的减震器配方可用于实现这一目标。在实践中,我们发现通过平衡TVP项和基于曲率的平滑项可以获得更好的结果。该算法同时应用于分形表面生长模拟和扫描数据集,以证明我们方法的有效性。

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