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A Research on Single Image Dehazing Algorithms Based on Dark Channel Prior

机译:基于暗通道先验的单图像去雾算法研究

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摘要

In the field of computer and machine vision, haze and fog lead to image degradation through various degradation mechanisms including but not limited to contrast attenuation, blurring and pixel distortions. This limits the efficiency of machine vision systems such as video surveillance, target tracking and recognition. Various single image dark channel dehazing algorithms have aimed to tackle the problem of image hazing in a fast and efficient manner. Such algorithms rely upon the dark channel prior theory towards the estimation of the atmospheric light which offers itself as a crucial parameter towards dehazing. This paper studies the state-of-the-art in this area and puts forwards their strengths and weaknesses. Through experiments the efficiencies and shortcomings of these algorithms are shared. This information is essential for researchers and developers in providing a reference for the development of applications and future of the research field.
机译:在计算机和机器视觉领域,雾霾通过多种劣化机制导致图像劣化,这些机制包括但不限于对比度衰减,模糊和像素失真。这限制了机器视觉系统(例如视频监视,目标跟踪和识别)的效率。各种单图像暗通道去雾算法旨在以快速有效的方式解决图像雾的问题。这样的算法依赖于暗通道先验理论来估计大气光,这将自身提供为去雾的关键参数。本文研究了该领域的最新技术,并提出了它们的优缺点。通过实验,分享了这些算法的效率和不足。这些信息对于研究人员和开发人员为应用程序的开发和研究领域的未来提供参考至关重要。

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