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改进泊松算法的图像三维重建点云模型网格化
引用本文:黄明伟,方莉娜,唐丽玉,王思洁.改进泊松算法的图像三维重建点云模型网格化[J].测绘科学,2017,42(4).
作者姓名:黄明伟  方莉娜  唐丽玉  王思洁
作者单位:福州大学地理空间信息技术国家地方联合工程研究中心/福建省空间信息工程研究中心,福州,350002
基金项目:国家科技支撑计划课题项目
摘    要:针对泊松表面重建算法在点云数据的网格化中仍不能有效满足"细节保持与噪声平滑"的平衡问题,该文提出了一种基于高斯滤波的改进泊松算法。通过将高斯滤波引入到点云数据等值面的向量场估计中,一方面实现了对点云拓扑结构的更准确估计以及对点云噪声的有效平滑;另一方面通过调节高斯滤波中的标准差参数,实现了对点云模型网格化的细节保持与噪声平滑的细微控制。以福州大学张孤梅雕像为实验对象,图像三维重建技术获得的点云数据作为数据源,利用改进的泊松算法进行点云网格化。结果表明,改进的泊松算法提高了网格模型的精确性与完整性,且在视觉上更好地逼近真实模型的细节,验证了改进算法的有效性。

关 键 词:三维重建  泊松算法  可控参数  高斯滤波

Point cloud gridding of 3D reconstruction from images based on the improved Poisson algorithm
HUANG Mingwei,FANG Lina,TANG Liyu,WANG Sijie.Point cloud gridding of 3D reconstruction from images based on the improved Poisson algorithm[J].Science of Surveying and Mapping,2017,42(4).
Authors:HUANG Mingwei  FANG Lina  TANG Liyu  WANG Sijie
Abstract:Since Poisson surface reconstruction algorithm still can't effectively meet the balance between details keeping and noise smoothing,this paper presented an improved Poisson algorithm based on Gaussian filter.Through Gaussian filter in the vector field estimates of point cloud isosurface,it achieved a more accurate estimate of the point cloud topology and noise effectively smoothing.On the other side,by adjusting the standard deviation of the Gaussian filter,it realized a fine control of point cloud between details keeping and noise smoothing.The paper took the statue of Zhang Gumei in Fuzhou University as the experiment object,took point cloud from 3D multi-views reconstruction as input data,and carried out the point cloud gridding with improved poisson algorithm.The results showed that improved Poisson algorithm raised the accuracy and integrity of the mesh model and realized the approximation of the details keeping of the truth ground,which verified the effectiveness of the improved algorithm.
Keywords:3D reconstruction  Poisson algorithm  controllable parameters  Gaussian filter
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