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基于脉冲耦合神经网络的点云曲面去噪
引用本文:邹北骥,周浩宇,辛国江,谭光华,陈再良.基于脉冲耦合神经网络的点云曲面去噪[J].电子学报,2012,40(11):2221-2225.
作者姓名:邹北骥  周浩宇  辛国江  谭光华  陈再良
作者单位:1. 中南大学信息科学与工程学院,湖南长沙,410083
2. 湖南大学信息科学与工程学院,湖南长沙,410082
基金项目:国家自然科学基金,国家自然科学基金重大研究计划
摘    要: 提出一种基于脉冲耦合神经网络(PCNN)的点云曲面去噪算法.该算法主要分为两步:噪声点定位和噪声点滤波.首先针对点云曲面构建一个PCNN神经网络,各个神经元的外部刺激值由邻近点的几何位置差异和法向差异构成,利用神经元输出的自适应点火捕获特性,实现了噪声点的定位;而后针对点云曲面中的噪声点,基于网格光顺中双边滤波的思想,实现噪声点的滤波,对于非噪声点,则保持原有的几何位置不变.实验结果表明,由于区分了噪声点和非噪声点,该算法较传统的点云曲面去噪算法能更加有效的去除噪声的同时并保持模型的几何特征.

关 键 词:点云曲面  点云曲面去噪  脉冲耦合神经网络  双边滤波
收稿时间:2011-12-17

PCNN-Based Point Set Surface Denoising
ZOU Bei-ji , ZHOU Hao-yu , XIN Guo-jiang , TAN Guang-hua , CHEN Zai-liang.PCNN-Based Point Set Surface Denoising[J].Acta Electronica Sinica,2012,40(11):2221-2225.
Authors:ZOU Bei-ji  ZHOU Hao-yu  XIN Guo-jiang  TAN Guang-hua  CHEN Zai-liang
Affiliation:1. School of Information Science and Engineering Central South University,Changsha,Hunan 410083,China;2. College of Information Science and Engineering Hunan University,Changsha,Hunan 410082,China
Abstract:A novel algorithm of PCNN-based point set surface denoising is proposed in this paper.The algorithm mainly includes two steps:location of noise points and smoothing of the located noise points.Firstly,a pulse-coupled neural network for the point set surface is constructed.The stimulation value of each neuron is decided by the differences of the position and the normal of the k-nearest neighbor points.The noise points are located through the adaptive firing capture feature of the PCNN.Based on the idea of bilateral filtering,the located noise points are smoothed,while the non-noise points remain their geometry position.Due to the different operations on noise points and non-noise points,experiments show that our algorithm performs better to remove the noise of the point set surface while keeping the features of the model.
Keywords:point set surface  point set surface denoising  PCNN  bilateral filtering
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