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Feature-preserving mesh denoising via bilateral normal filtering

机译:通过双边正规滤波进行特征保持网格去噪

摘要

In this paper, we propose a feature-preserving mesh denoising algorithm which is effective, simple and easy to implement. The proposed method is a two-stage procedure with a bilateral surface normal filtering followed by integration of the normals for least squares error (LSE) vertex position updates. It is well-known that normal variations offer more intuitive geometric meaning than vertex position variations. A smooth surface can be described as one having smoothly varying normals whereas features such as edges and corners appear as discontinuities in the normals. Thus we cast feature-preserving mesh denoising as a robust surface normal estimation using bilateral filtering. Our definition of "intensity difference" used in the influence weighting function of the bilateral filter robustly prevents features such as sharp edges and corners from being washed out. We will demonstrate this capability by comparing the results from smoothing CAD-like models with other smoothing algorithms. © 2005 IEEE.
机译:本文提出了一种有效,简单,易于实现的特征保留网格降噪算法。所提出的方法是一个两阶段过程,其中进行了双边表面法线滤波,然后对法线进行最小二乘误差(LSE)顶点位置更新的积分。众所周知,法线变化比顶点位置变化提供更直观的几何含义。可以将平滑表面描述为具有平滑变化的法线的表面,而诸如边缘和拐角之类的特征在法线中显示为不连续。因此,我们使用双边滤波将保留特征的网格去噪作为鲁棒的表面法线估计。我们在双边滤波器的影响加权函数中使用的“强度差”定义有力地防止了诸如尖锐的边缘和拐角之类的特征被冲掉。我们将通过比较平滑CAD类模型的结果与其他平滑算法来证明这种功能。 ©2005 IEEE。

著录项

  • 作者

    Lee KW; Wang WP;

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  • 年度 2005
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  • 原文格式 PDF
  • 正文语种 eng
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