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基于模板的单目三维形状恢复的拉普拉斯网格。

Template-Based Monocular 3D Shape Recovery Using Laplacian Meshes.

出版信息

IEEE Trans Pattern Anal Mach Intell. 2016 Jan;38(1):172-87. doi: 10.1109/TPAMI.2015.2435739.

Abstract

We show that by extending the Laplacian formalism, which was first introduced in the Graphics community to regularize 3D meshes, we can turn the monocular 3D shape reconstruction of a deformable surface given correspondences with a reference image into a much better-posed problem. This allows us to quickly and reliably eliminate outliers by simply solving a linear least squares problem. This yields an initial 3D shape estimate, which is not necessarily accurate, but whose 2D projections are. The initial shape is then refined by a constrained optimization problem to output the final surface reconstruction. Our approach allows us to reduce the dimensionality of the surface reconstruction problem without sacrificing accuracy, thus allowing for real-time implementations.

摘要

我们展示了通过扩展拉普拉斯形式主义(最初在图形学领域引入以正则化 3D 网格),我们可以将给定对应关系的变形表面的单目 3D 形状重建转化为一个更好的问题。这允许我们通过简单地求解线性最小二乘问题快速可靠地消除异常值。这会生成一个初始的 3D 形状估计,它不一定准确,但它的 2D 投影是准确的。然后,通过约束优化问题来细化初始形状,以输出最终的曲面重建。我们的方法允许我们在不牺牲准确性的情况下降低曲面重建问题的维度,从而实现实时实现。

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