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Bregman交替迭代遥感图像复原方法
引用本文:徐焕宇,孙权森,罗楠,夏德深.Bregman交替迭代遥感图像复原方法[J].中国图象图形学报,2012,17(8):1035-1041.
作者姓名:徐焕宇  孙权森  罗楠  夏德深
作者单位:南京理工大学计算机学院, 南京 210094;南京理工大学计算机学院, 南京 210094;南京理工大学计算机学院, 南京 210094;南京理工大学计算机学院, 南京 210094
基金项目:国家自然科学基金项目(60773172);江苏省自然科学基金项目(BK2008411);教育部博士学科点基金项目(200802880017)
摘    要:针对多种退化因素的遥感图像复原问题,提出一种基于Bregman迭代的遥感图像消除不规则采样、去模糊和去噪总变差复原方法。在此基础上,结合非局部正则化方法,提出一种自适应计算非局部均值滤波器参数的方法。求解时使用交替最小化方法将复杂的复原问题分割为两个容易求解的子问题。实验结果表明,本文方法比其他基于Bregman迭代的方法收敛速度快、复原效果好,且加入非局部正则化后具有更好的纹理细节信息保持能力。

关 键 词:图像复原  总变差  Bregman迭代  非局部正则化
收稿时间:2011/7/29 0:00:00
修稿时间:3/6/2012 12:00:00 AM

Bregman alternating iterative method for remote sensing image restoration
Xu Huanyu,Sun Quansen,Luo Nan and Xia Deshen.Bregman alternating iterative method for remote sensing image restoration[J].Journal of Image and Graphics,2012,17(8):1035-1041.
Authors:Xu Huanyu  Sun Quansen  Luo Nan and Xia Deshen
Affiliation:College of Computer Science and Technology, Nanjing University of Science and Technology Nanjing 210094, China;College of Computer Science and Technology, Nanjing University of Science and Technology Nanjing 210094, China;College of Computer Science and Technology, Nanjing University of Science and Technology Nanjing 210094, China;College of Computer Science and Technology, Nanjing University of Science and Technology Nanjing 210094, China
Abstract:For remote sensing image restoration with a variety of degradation factors,we propose a Bregman iteration based image restoration algorithm for remote sensing images to eliminate the irregular sampling effect,debluring and denoising. Moreover,based on this algorithm, combined with nonlocal regularization,we propose a method to determine the nonlocal filter parameter adaptively. Using alternating minimization, we split the complex original problem into two sub problems that are easier to solve. Our experimental results show that the proposed algorithm has a faster convergence speed and better restoration results compared to other total variation and Bregman iteration based algorithms, and By adding the nonlocal regularization, it can keep the detail information better.
Keywords:image restoration  total variation  Bregman iteration  nonlocal regularization
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