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A Novel Retinex-Based Fractional-Order Variational Model for Images With Severely Low Light

机译:基于reinex的基于Retinex的分数阶变分变分,用于严重低光的图像

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In this paper, we propose a novel Retinex-based fractional-order variational model for severely low-light images. The proposed method is more flexible in controlling the regularization extent than the existing integer-order regularization methods. Specifically, we decompose directly in the image domain and perform the fractional-order gradient total variation regularization on both the reflectance component and the illumination component to get more appropriate estimated results. The merits of the proposed method are as follows: 1) small-magnitude details are maintained in the estimated reflectance. 2) illumination components are effectively removed from the estimated reflectance. 3) the estimated illumination is more likely piecewise smooth. We compare the proposed method with other closely related Retinex-based methods. Experimental results demonstrate the effectiveness of the proposed method.
机译:在本文中,我们提出了一种用于严重低光图像的新型Retinex的分数变分模型。该方法在控制正则化程度方面比现有的整数正规方法更灵活。具体地,我们直接分解在图像域中,并在反射率分量和照明组件上执行分数级梯度总变化正则变化,以获得更合适的估计结果。所提出的方法的优点如下:1)小幅细节保持在估计的反射率。 2)从估计的反射率有效地去除照明组件。 3)估计的照明更有可能是平滑的。我们将提议的方法与其他密切相关的基于Retinex的方法进行比较。实验结果表明了该方法的有效性。

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