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Scalable Locally Injective Mappings

机译:可扩展的局部内射映射

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We present a scalable approach for the optimization of flip-preventing energies in the general context of simplicial mappings and specifically for mesh parameterization. Our iterative minimization is based on the observation that many distortion energies can be optimized indirectly by minimizing a family of simpler proxy energies. Minimization of these proxies is a natural extension of the local/global minimization of the ARAP energy. Our algorithm is simple to implement and scales to datasets with millions of faces. We demonstrate our approach for the computation of maps that minimize a conformal or isometric distortion energy, both in two and three dimensions. In addition to mesh parameterization, we show that our algorithm can be applied to mesh deformation and mesh quality improvement.
机译:我们提供了一种可扩展的方法,用于在简单映射的一般上下文中优化翻转保护能量,尤其是用于网格参数化。我们的迭代最小化基于以下观察结果:可以通过最小化一组更简单的代理能量来间接优化许多失真能量。这些代理的最小化是ARAP能量的本地/全局最小化的自然延伸。我们的算法易于实现,并可缩放到具有数百万张面孔的数据集。我们展示了我们的地图计算方法,该方法可在二维和三维方向上最大限度地减少等形或等距畸变能量。除了网格参数化之外,我们还表明我们的算法可以应用于网格变形和网格质量改进。

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