A double total variation regularized model of Retinex theory based on nonlocal differential operators

Yuanyuan Zang, Zhenkuan Pan, J. Duan, Guodong Wang, Weibo Wei
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引用次数: 3

Abstract

Image characteristics, such as texture, edge, smoothness, can be much better preserved by using nonlocal differential operators based on patch-distances in image processing. In this paper, we apply with nonlocal differential operators to some existing variation models of Retinex, such as the nonlocal variation model of Retinex (NL_VR); the nonlocal TV regularized model (NL_TV_R) and the nonlocal total variation regularized model with constraints (NL_TV_C). And then we improve and establish a double total variation regularized model of Retinex theory (DTV) and the nonlocal double total regularized model (NL_DTV), which could handles better edges in the illumination. Experiments show that our proposed method and Split Bregman algorithm presented in this paper have higher computational efficiency and accuracy.
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基于非局部微分算子的双全变分正则化Retinex理论模型
在图像处理中使用基于补丁距离的非局部微分算子可以更好地保留图像的纹理、边缘、平滑度等特征。本文将非局部微分算子应用于已有的Retinex变分模型,如:Retinex的非局部变分模型(NL_VR);非局部电视正则化模型(NL_TV_R)和带约束的非局部全变分正则化模型(NL_TV_C)。然后改进并建立了Retinex理论的双全变分正则化模型(DTV)和非局部双全变分正则化模型(NL_DTV),该模型能更好地处理光照下的边缘。实验表明,本文提出的方法和Split Bregman算法具有更高的计算效率和精度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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