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A partition-of-unity based algorithm for implicit surface reconstruction using belief propagation

机译:基于单元划分的使用置信度传播的隐式曲面重构算法

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摘要

[[abstract]]In this paper, we propose a new algorithm for the fundamental problem of reconstructing surfaces from a large set of unorganized 3D data points. The local shapes of the surface are recovered by variational implicit surface represented as a weighted combination of radial basis functions. The variational implicit patches are then combined together to form the overall surface via a set of blending functions, which is also referred to as the partition-of-unity method. The reconstruction algorithm first partitions the input point set by octree subdivision and surface normal estimation is performed so as to orientate the local variational implicit patches. A new graph optimization scheme based on the belief propagation framework is proposed to determine the global consistent orientation for the entire set of data points. To achieve multi-scale reconstruction, we propose a novel progressive reconstruction algorithm which utilizes the Schur complement formula to reduce the computational cost of iteratively updating the radial basis function coefficients. Finally, we demonstrate the performance of the proposed algorithm by showing experimental results on some real-world 3D data sets.
机译:[[摘要]]在本文中,我们针对从大量无组织的3D数据点重建曲面的基本问题提出了一种新算法。表面的局部形状由变化的隐式表面恢复,该隐式表面表示为径向基函数的加权组合。然后,通过一组混合函数将变化的隐式面片组合在一起以形成整个曲面,这也称为统一分区方法。重建算法首先对通过八叉树细分设置的输入点进行分区,然后执行表面法线估计,以定向局部变化隐式斑块。提出了一种基于信念传播框架的新图优化方案,以确定整个数据点集合的全局一致方向。为了实现多尺度重建,我们提出了一种新颖的渐进重建算法,该算法利用Schur补码公式来减少迭代更新径向基函数系数的计算成本。最后,我们通过在一些实际3D数据集上显示实验结果来证明所提出算法的性能。

著录项

  • 作者

    Yi-Ling Chen;

  • 作者单位
  • 年度 2012
  • 总页数
  • 原文格式 PDF
  • 正文语种 [[iso]]en
  • 中图分类

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