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Single image dehazing via an improved atmospheric scattering model

机译:通过改进的大气散射模型对单个图像进行除雾

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Under foggy or hazy weather conditions, the visibility and color fidelity of outdoor images are prone to degradation. Hazy images can be the cause of serious errors in many computer vision systems. Consequently, image haze removal has practical significance for real-world applications. In this study, we first analyze the inherent weaknesses of the atmospheric scattering model and propose an improvement to address those weaknesses. Then, we present a fast image haze removal algorithm based on the improved model. In our proposed method, the input image is partitioned into several scenes based on the haze thickness. Next, averaging and erosion operations calculate the rough scene luminance map in a scene-wise manner. We obtain the rough scene transmission map by maximizing the contrast in each scene and then develop a way to gently remove the haze using an adaptive method for adjusting scene transmission based on scene features. In addition, we propose a guided total variation model for edge optimization, so as to prevent from the block effect as well as to eliminate the negative effect from the wrong scene segmentation results. The experimental results demonstrate that our method is effective in solving a series of common problems, including uneven illuminance, overenhanced and oversaturated images, and so forth. Moreover, our method outperforms most current dehazing algorithms in terms of visual effects, universality, and processing speed.
机译:在有雾或朦胧的天气条件下,室外图像的可见度和色彩保真度易于降低。朦胧的图像可能是许多计算机视觉系统中严重错误的原因。因此,去除图像雾度对于实际应用具有实际意义。在这项研究中,我们首先分析了大气散射模型的固有弱点,并提出了解决这些弱点的改进方法。然后,我们提出了一种基于改进模型的快速图像雾度去除算法。在我们提出的方法中,基于雾度的厚度,将输入图像分为几个场景。接下来,平均和腐蚀操作以场景方式计算粗糙的场景亮度图。我们通过最大化每个场景的对比度来获得粗糙的场景传输图,然后开发一种方法,该方法使用自适应方法根据场景特征调整场景传输,从而轻轻地消除雾度。另外,我们提出了一种用于边缘优化的引导总变化模型,以防止块效应以及消除错误场景分割结果带来的负面影响。实验结果表明,我们的方法可以有效解决一系列常见问题,包括照度不均匀,图像过饱和和过饱和等。此外,在视觉效果,通用性和处理速度方面,我们的方法优于大多数当前的除雾算法。

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