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首页> 外文期刊>Journal of Modern Optics >Minimum preserving subsampling-based fast image de-fogging
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Minimum preserving subsampling-based fast image de-fogging

机译:最低保存基于分级的快速图像去雾化

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摘要

Dark channel prior based techniques have been widely used in image and video de-fogging which produce real and impressive results. Their major limitation is the large computational cost of dark channel estimation. For the image of size M×N, to find n×n dark channel, 3 × n~2 × M × N operations are required, which increase its computational complexity. In this work, a novel approach of image subsampling is proposed, which preserves the value of local minimum in a patch. This subsampled image is used to construct the dark channel to improve the computational efficiency. Transmission map is refined using fast guided filter to remove blocking artifacts. Atmospheric light is calculated by ignoring pixels of bright light sources. To make the results uniformly bright, adaptive post processing is performed on de-fogging results. The image de-fogging technique is further extended for videos. It is demonstrated that proposed technique produces better results than existing state-of-the-art techniques while achieving real-time processing speed.
机译:基于黑暗的通道的技术已经广泛用于图像和视频去雾化,产生真实和令人印象深刻的结果。它们的主要限制是暗信道估计的大计算成本。对于大小M×N的图像,找到n×n暗通道,需要3×n〜2×m×n操作,这增加了其计算复杂度。在这项工作中,提出了一种新颖的图像限制方法,其在补丁中保留了局部最小值的值。该限位图像用于构造暗通道以提高计算效率。使用快速导向滤波器精制传输映射以删除阻塞伪影。大气光通过忽略明亮光源的像素来计算。为了使结果均匀明亮,对脱雾结果进行自适应后处理。图像去雾化技术进一步扩展了视频。据证明,所提出的技术在实现实时处理速度的同时产生比现有的最先进技术更好的结果。

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