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Fast image dehazing using improved dark channel prior

机译:使用改进的暗频道之前快速图像脱色

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In the frog and haze climatic condition, the captured picture will become blurred and the color is partial gray and white, due to the effect of atmospheric scattering. This situation brings a great deal of inconvenience to the video surveillance system, so the study of defogging algorithm in this weather is of great importance. This paper deeply analyzes the physical process of imaging in foggy weather. After full study on the haze removal algorithm of single image over the last decade, we propo se a fast haze removal algorithm which based on a fast bilateral filtering combined with dark colors prior. This algorithm starts with the atmospheric scattering model, derives a estimated transmission map by using dark channel prior, and then combines with grayscale to extract refined transmission map by using the fast bilateral filter. This algorithm has a fast execution speed and greatly improves the original algorithm which is morre time-consuming. On this basis, we analyzed the reasons why the image is dim after the haze removal using dark channel prior, and proposed the improved transmission map formula. Experimental-results show that this algorithm is feasible which effectively restores the contrast and color of the scene, significantly improves the visual effects of the image. Those image with large area of sky usually prone to distortion when using the dark channel prior, Therefore we propose a method of weakening the sky region, aims to improve the adaptability of the algorithm.
机译:在青蛙和阴霾气候条件下,由于大气散射的效果,捕获的图片将变得模糊,颜色是局部灰色和白色。这种情况为视频监控系统带来了极大的不便,因此在这种天气中的缺失算法研究非常重要。本文深入分析了有雾天气成像的物理过程。在过去十年中对单幅图像的雾霾去除算法完全研究,PARPO SE基于快速双边滤波的快速雾度去除算法与先前的暗颜色相结合。该算法从大气散射模型开始,通过使用暗通道来源估计的传输映射,然后与灰度相结合,通过使用快速双边滤波器来提取精制的传输映射。该算法具有快速执行速度,大大提高了莫雷耗时的原始算法。在此基础上,我们分析了在使用暗通道之前去除雾霾后图像暗的原因,并提出了改进的传输地图公式。实验结果表明,该算法是可行的,其有效地恢复了场景的对比度和颜色,显着提高了图像的视觉效果。那些具有大面积的天空的图像通常在使用黑暗信道之前容易失真,因此我们提出了一种削弱天空区域的方法,旨在提高算法的适应性。

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