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An Orientation Inference Framework for Surface Reconstruction From Unorganized Point Clouds

机译:用于从无组织点云进行表面重构的方向推断框架

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摘要

In this paper, we present an orientation inference framework for reconstructing implicit surfaces from unoriented point clouds. The proposed method starts from building a surface approximation hierarchy comprising of a set of unoriented local surfaces, which are represented as a weighted combination of radial basis functions. We formulate the determination of the globally consistent orientation as a graph optimization problem by treating the local implicit patches as nodes. An energy function is defined to penalize inconsistent orientation changes by checking the sign consistency between neighboring local surfaces. An optimal labeling of the graph nodes indicating the orientation of each local surface can, thus, be obtained by minimizing the total energy defined on the graph. The local inference results are propagated over the model in a front-propagation fashion to obtain the global solution. The reconstructed surfaces are consolidated by a simple and effective inspection procedure to locate the erroneously fitted local surfaces. A progressive reconstruction algorithm that iteratively includes more oriented points to improve the fitting accuracy and efficiently updates the RBF coefficients is proposed. We demonstrate the performance of the proposed method by showing the surface reconstruction results on some real-world 3-D data sets with comparison to those by using the previous methods.
机译:在本文中,我们提出了一种用于从无方向的点云中重构隐式曲面的方向推断框架。所提出的方法从建立包括一组未定向局部表面的表面近似层次结构开始,这些局部表面表示为径向基函数的加权组合。通过将局部隐式补丁视为节点,我们将确定全局一致方向作为图优化问题。通过检查相邻局部表面之间的符号一致性,定义了一个能量函数以惩罚不一致的方向变化。因此,可以通过最小化在图上定义的总能量来获得表示每个局部表面的方向的图节点的最佳标记。局部推断结果以正向传播的方式在模型上传播以获得全局解。通过简单有效的检查程序对重建的表面进行合并,以定位错误安装的局部表面。提出了一种迭代重构算法,该迭代算法迭代地包含更多的定向点以提高拟合精度并有效地更新RBF系数。我们通过在一些实际的3-D数据集上显示表面重建结果,并与使用以前的方法进行比较,证明了该方法的性能。

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