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基于暗原色先验与变分正则化的图像去雾研究
引用本文:赵慧,魏伟波,潘振宽,纪连顺. 基于暗原色先验与变分正则化的图像去雾研究[J]. 计算机工程, 2021, 47(10): 214-220. DOI: 10.19678/j.issn.1000-3428.0059464
作者姓名:赵慧  魏伟波  潘振宽  纪连顺
作者单位:青岛大学 计算机科学技术学院, 山东 青岛 266071
基金项目:国家自然科学基金(61772294)。
摘    要:现有雾天图像处理方法能够实现较好的去雾效果,但会丢失部分细节并产生噪声放大的问题.将暗原色先验与基于TV、BH规则项的变分模型相结合,提出一种新的变分去雾模型H-TVBH.根据暗原色先验原理估计图像的初始透射率,采用四叉树分解估计大气光值,将初始透射率和大气光值输入H-TVBH模型中,采用分裂Bregman算法和快速傅...

关 键 词:图像去雾  暗原色先验  变分模型  分裂Bregman算法  快速傅里叶变换
收稿时间:2020-09-07
修稿时间:2020-10-12

Research on Image Dehazing Based on Dark Channel Prior and Variational Regularization
ZHAO Hui,WEI Weibo,PAN Zhenkuan,JI Lianshun. Research on Image Dehazing Based on Dark Channel Prior and Variational Regularization[J]. Computer Engineering, 2021, 47(10): 214-220. DOI: 10.19678/j.issn.1000-3428.0059464
Authors:ZHAO Hui  WEI Weibo  PAN Zhenkuan  JI Lianshun
Affiliation:College of Computer Science and Technology, Qingdao University, Qingdao, Shandong 266071, China
Abstract:The existing foggy image processing methods can achieve good dehazing effect, but some details are often lost, and noise amplification is easy to occur in the noisy areas.In order to solve these problems, a new variational dehazing model, H-TVBH, is proposed based on dark channel priori and the variational model that uses Total Variation(TV) and Bounded Hessian(BH) rule terms.The initial transmittance of the image is estimated according to the dark channel prior principle.At the same time, the atmospheric light value is estimated by quadtree decomposition.Then the obtained initial transmittance and atmospheric light value are applied to the proposed model.After that, the auxiliary variables and Bregman iteration parameters are introduced, and the split Bregman algorithm as well as fast Fourier transform is adopted to solve the optimized transmittance and dehazing image through alternate iterations.Experimental results show that the proposed algorithm can enhance the image contrast while effectively suppressing the noise in the image, retain the image texture details, and make the image clearer and more natural.
Keywords:image dehazing  dark channel prior  variational model  split Bregman algorithm  fast Fourier transform  
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