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A directional global sparse model for single image rain removal

机译:用于去除单个图像的方向性全局稀疏模型

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摘要

Rain removal from a single image is an important issue in the fields of outdoor vision. Rain, a kind of bad weather that is often seen, usually causes complex local intensity changes in images and has negative impact on vision performance. Many existing rain removal approaches have been proposed recently, such as some dictionary learning-based methods and layer decomposition-based methods. Although these methods can improve the visibility of rain images, they fail to consider the intrinsic directional and structural information of rain streaks, thus usually leave undesired rain streaks or change the background intensity of rain-free region significantly. In the paper, we propose a simple but efficient method to remove rain streaks from a single rainy image. The proposed method formulates a global sparse model that involves three sparse terms by considering the intrinsic directional and structural knowledge of rain streaks, as well as the property of image background information. We employ alternating direction method of multipliers (ADMM) to solve the proposed convex model which guarantees the global optimal solution. Results on a variety of synthetic and real rainy images demonstrate that the proposed method outperforms two recent state-of-the-art rain removal methods. Moreover, the proposed method needs no training and requires much less computation significantly.
机译:从单个图像去除雨水是户外视觉领域的重要问题。雨水是一种常见的恶劣天气,通常会导致图像中局部强度的复杂变化,并对视觉性能产生负面影响。最近已经提出了许多现有的除雨方法,例如一些基于字典学习的方法和基于层分解的方法。尽管这些方法可以提高降雨图像的可视性,但它们并未考虑降雨条纹的固有方向和结构信息,因此通常会留下不希望的降雨条纹或显着改变无雨区的背景强度。在本文中,我们提出了一种简单有效的方法来从单个阴雨图像中去除雨水条纹。该方法通过考虑降雨条纹的内在方向和结构知识,以及图像背景信息的属性,建立了一个包含三个稀疏项的全局稀疏模型。我们采用交替方向乘数法(ADMM)来解决所提出的凸模型,从而保证了全局最优解。在各种合成的和真实的雨天图像上的结果表明,所提出的方法优于两种最新的最新雨水去除方法。而且,所提出的方法不需要训练,并且所需的计算量大大减少。

著录项

  • 来源
    《Applied Mathematical Modelling》 |2018年第7期|662-679|共18页
  • 作者单位

    School of Mathematical Sciences/Research Center for Image and Vision Computing, University of Electronic Science and Technology of China;

    School of Mathematical Sciences/Research Center for Image and Vision Computing, University of Electronic Science and Technology of China;

    School of Mathematical Sciences/Research Center for Image and Vision Computing, University of Electronic Science and Technology of China;

    School of Mathematical Sciences/Research Center for Image and Vision Computing, University of Electronic Science and Technology of China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Single image rain removal; Directional sparse model; Alternating direction method of multipliers;

    机译:单图像除雨;方向稀疏模型;乘数交替方向法;

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