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Convection-driven dynamic surface reconstruction

机译:对流驱动的动态曲面重建

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In this paper, we introduce a flexible framework for the reconstruction of a surface from an unorganized point set, extending the geometric convection approach introduced by Chaine. Given a dense input point cloud, we first extract a triangulated surface that interpolates a subset of the initial data. We compute this surface in an output sensitive manner by decimating the input point set on-the-fly during the reconstruction process. Our simplification procedure relies on a simple criterion that locally detects and reduces oversampling. If needed, we then operate in a dynamic fashion for local refinement or further simplification of the reconstructed surface. Our method allows to locally update the reconstructed surface by inserting or removing sample points without restarting the convection process from scratch. This iterative correction process can be controlled interactively by the user or automatized given some specific local sampling constraints.
机译:在本文中,我们引入了一种灵活的框架,用于从无序点集重构曲面,扩展了Chaine引入的几何对流方法。给定密集的输入点云,我们首先提取一个三角化表面,该表面对初始数据的子集进行插值。我们通过在重建过程中即时估计输入点集来以输出敏感方式计算此表面。我们的简化程序依赖于一个简单的准则,该准则可以本地检测并减少过采样。如果需要,然后我们以动态方式进行操作,以对重建的曲面进行局部优化或进一步简化。我们的方法允许通过插入或移除采样点来局部更新重建的曲面,而无需从头开始重新启动对流过程。该迭代校正过程可以由用户交互控制,也可以在给定某些特定局部采样约束的情况下自动进行。

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