首页> 外文会议>International Symposium on Volume Graphics; 20070903-04; Pragur(CZ) >Surface Reconstruction from Noisy Point Clouds using Coulomb Potentials
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Surface Reconstruction from Noisy Point Clouds using Coulomb Potentials

机译:使用库仑势从噪声点云进行表面重建

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We show that surface reconstruction from point clouds without orientation information can be formulated as a convection problem in a force field based on Coulomb potentials. To efficiently evaluate Coulomb potentials on the volumetric grid on which the evolving surface (current approximation to the final surface) is convected we use the so called 'Particle-Particle Particle-Mesh' (PPPM) algorithm from molecular dynamics, fully implemented on modern, programmable graphics hardware. Our approach offers a number of advantages. Unlike distance-based methods which are sensitive to noise, the proposed method is highly resilient to shot noise since global Coulomb potentials are used to disregard outliers due to noise. Unlike local fitting, the long-range nature of Coulomb potentials implies that all data points are considered at once, so that global information is used in the fitting process. The method compares favorably with respect to previous approaches in terms of speed and flexibility and is highly resilient to noise.
机译:我们表明,从不包含方向信息的点云进行表面重构可以公式化为基于库仑势的力场中的对流问题。为了有效地评估对流表面(当前近似于最终表面)对流的体积网格上的库仑电势,我们使用了分子动力学中所谓的“颗粒-颗粒-颗粒-网格”(PPPM)算法,该算法已完全在现代系统中实现,可编程图形硬件。我们的方法具有许多优势。与对噪声敏感的基于距离的方法不同,由于全局库仑电势用于忽略由于噪声引起的异常值,因此所提出的方法对散粒噪声具有很高的弹性。与局部拟合不同,库仑势的远程性质意味着要同时考虑所有数据点,以便在拟合过程中使用全局信息。就速度和灵活性而言,该方法相对于以前的方法具有优势,并且对噪声具有高度的弹性。

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