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An Adaptive Combination of Dark and Bright Channel Priors for Single Image Dehazing

机译:用于单图像去雾的暗通道和亮通道的自适应组合

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摘要

Dehazing methods based on prior assumptions derived from statistical image properties fail when these properties do not hold. This is most likely to happen when the scene contains large bright areas, such as snow and sky, due to the ambiguity between the airlight and the depth information. This is the case for the popular dehazing method Dark Channel Prior. In order to improve its performance, the authors propose to combine it with the recent multiscale STRESS, which serves to estimate Bright Channel Prior. Visual and quantitative evaluations show that this method outperforms Dark Channel Prior and competes with the most robust dehazing methods, since it separates bright and dark areas and therefore reduces the color cast in very bright regions.
机译:当这些属性不成立时,基于从统计图像属性得出的先前假设的除雾方法将失败。当场景包含较大的明亮区域(如雪和天空)时,由于光线和深度信息之间的歧义,很可能会发生这种情况。流行的除雾方法Dark Channel Prior就是这种情况。为了提高其性能,作者建议将其与最新的多尺度STRESS结合使用,该STRESS用于估计Bright Channel Prior。视觉和定量评估表明,此方法优于“暗通道先验”,并且可与最强大的除雾方法竞争,因为它可以将亮区和暗区分开,从而减少非常亮区域的色偏。

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