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Consistent topographic surface labelling

机译:一致的地形表面标签

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摘要

This paper describes work aimed at consistently labelling surface facets using topographic classes derived from mean and Gaussian curvature measurements. There are two distinct contributions. Firstly, we develop a statistical model which allows label probabilities to be assigned to the different topographic classes. These probabilities capture uncertainties in the computation of surface curvature from raw surface normal information. The probabilities are computed using propagation of variance from the surface normal measurements. The second contribution is to demonstrate how topographic surface labelling can be realised using probabilistic relaxation. The key ingredient is to develop a constraint dictionary for the feasible configurations of the topographic labels that can occur on neighbouring faces of the surface mesh. These constraints relate to the legal adjacency of different topographic structures together with the smoothness and continuity of uniform regions.
机译:本文介绍了旨在使用从均值和高斯曲率测量得出的地形类别来一致地标记表面刻面的工作。有两个不同的贡献。首先,我们开发了一个统计模型,该模型允许将标签概率分配给不同的地形类别。这些概率在根据原始表面法线信息计算表面曲率时捕获了不确定性。使用表面法线测量值的方差传播来计算概率。第二个贡献是演示如何使用概率松弛来实现地形表面标记。关键要素是为可能在表面网格的相邻面上出现的地形标签的可行配置开发约束字典。这些约束条件涉及不同地形结构的合法邻接以及统一区域的平滑性和连续性。

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