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D-HAZY: A dataset to evaluate quantitatively dehazing algorithms

机译:D-HAZY:评估定量除雾算法的数据集

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Dehazing is an image enhancing technique that emerged in the recent years. Despite of its importance there is no dataset to quantitatively evaluate such techniques. In this paper we introduce a dataset that contains 1400+ pairs of images with ground truth reference images and hazy images of the same scene. Since due to the variation of illumination conditions recording such images is not feasible, we built a dataset by synthesizing haze in real images of complex scenes. Our dataset, called D-HAZY, is built on the Middelbury [1] and NYU Depth [2] datasets that provide images of various scenes and their corresponding depth maps. Due to the fact that in a hazy medium the scene radiance is attenuated with the distance, based on the depth information and using the physical model of a hazy medium we are able to create a corresponding hazy scene with high fidelity. Finally, using D-HAZY dataset, we perform a comprehensive quantitative evaluation of several state of the art single-image dehazing techniques.
机译:除雾是近年来出现的一种图像增强技术。尽管它很重要,但没有数据集可以定量评估这些技术。在本文中,我们介绍了一个数据集,该数据集包含1400多个图像对以及同一场景的地面真实参考图像和朦胧图像。由于由于光照条件的变化而无法记录此类图像,因此我们通过在复杂场景的真实图像中合成雾度来构建数据集。我们的数据集D-HAZY建立在Middelbury [1]和NYU Depth [2]数据集的基础上,这些数据集提供了各种场景的图像及其相应的深度图。由于这样的事实,在朦胧的介质中,场景深度的亮度随距离而变小,基于深度信息并使用朦胧的介质的物理模型,我们能够创建具有高保真度的相应朦胧的场景。最后,使用D-HAZY数据集,我们对几种最先进的单图像除雾技术进行了全面的定量评估。

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