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Fog Effects Modeling and Removal for Real-Time Vision Applications

机译:实时视觉应用的烟雾效果建模和消除

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Multiple light scattering, leading to blurring or loss of spatial resolution in dense fog regions, is not considered by previous imaging models. To better understand weather effects on vision and improve present defogging methods, this paper describes a new physics-based model, which can explain multiple scattering effects as well as the airlight and attenuation of reflections under fog conditions. Based on the model, an approach for estimating blurring effects of multiple scattering is proposed, using rough depth dependent weighted sum of multi-scale image convolutions. Then, we present a fast single image-based fog removal algorithm, in which blurring effects and airlight are estimated simultaneously with local minimum filter and two-scale Gaussian filters. Experimental results show that the algorithm can make impressive performance with real time implementation.
机译:先前的成像模型未考虑多次光散射,从而导致浓雾区域的空间分辨率模糊或损失。为了更好地了解天气对视觉的影响并改进当前的除雾方法,本文介绍了一种基于物理学的新模型,该模型可以解释多重散射效应以及雾条件下的光线和反射衰减。在该模型的基础上,提出了一种基于粗糙深度的多尺度卷积加权加权和估计多重散射模糊效果的方法。然后,我们提出了一种基于单个图像的快速除雾算法,其中使用局部最小滤镜和两尺度高斯滤镜同时估计模糊效果和光线。实验结果表明,该算法在实时实现的基础上具有令人印象深刻的性能。

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