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Content-Preserving Tone Adjustment for Image Enhancement

机译:内容保留色调调整以增强图像

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We propose a novel method based on Convolutional Neural Networks for content-preserving tone adjustment. The method is at the same time fast and accurate since we decouple the inference of the parameters and the color transform: the parameters are inferred from a downsampled version of the input image and the transformation is applied to the full resolution input. The method includes two steps of image enhancement: the first one is a global color transformation, while the second one is a local transformation. Experiments conducted on the DPED - DSLR Photo Enhancement Dataset, that has been used for the NTIRE19 Image Enhancement Challenge, and on the MIT-Adobe FiveK dataset, that is widely used for image enhancement, demonstrate the effectiveness of the proposed method.
机译:我们提出了一种基于卷积神经网络的新方法,用于保持内容的色调调整。该方法同时又快速又准确,因为我们将参数的推论与颜色变换解耦:从输入图像的降采样版本中推论出参数,并将变换应用于全分辨率输入。该方法包括两个图像增强步骤:第一个是全局颜色变换,而第二个是局部变换。在已用于NTIRE19图像增强挑战的DPED-DSLR照片增强数据集以及在广泛用于图像增强的MIT-Adobe FiveK数据集上进行的实验证明了该方法的有效性。

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