半规则重网格,减少重网格误差

Leon Denis, A. Munteanu, P. Schelkens
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引用次数: 1

摘要

在本文中,我们提出了一种重网格算法,它大大减少了在规则采样的重网格对象中固有的混叠伪影。该算法从半规则网格出发,通过置换顶点,减少了网格重划分误差,避免了混叠,使得原始网格的大部分样本也存在于网格重划分模型中。通过使用搜索树来提高计算效率,搜索树可以有效地收集三维空间中给定点附近的顶点。与最先进的半规则重构相比,所提出的重构极大地提高了重构对象中高频区域的视觉质量。此外,该算法产生较低的重划分误差,这反映在基于小波的网格压缩中显著增加的PSNR上界。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Semi-regular remeshing with reduced remeshing error
In this paper we present a remeshing algorithm which drastically reduces the aliasing artifacts inherent in regularly-sampled remeshed objects. Starting from a semi-regular mesh, the proposed algorithm reduces the remeshing error and avoids aliasing by displacing vertices such that most samples of the original mesh are present in the remeshed model as well. Computational efficiency is provided by using a search-tree, which efficiently gathers vertices near a given point in a 3D space. Compared to the state-of-the-art semi-regular remesher, the proposed remesher drastically improves the visual quality of the high-frequency regions in remeshed objects. Additionally, the proposed algorithm yields a lower remeshing error, which is reflected by a significantly increased PSNR upper-bound in wavelet-based compression of such meshes.
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