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Automatic grayscale image colorization using histogram regression

机译:使用直方图回归自动灰度图像着色

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摘要

Colorization aims to adding colors to a grayscale image. This task is ill-posed in the sense that assigning the colors to a grayscale image without any prior knowledge is ambiguous. Most of the previous methods require some amount of user interventions, making colorization a hard work. Motivated by this, a novel automatic grayscale image colorization method based on histogram regression is presented in this paper. A source image is adopted to provide the color information. Locally weighted regression is performed on both the grayscale image and the source image. Thus, the feature distributions of two images can be obtained. Then, a new matching method is proposed to align these features by finding and adjusting the zero-points of the histogram. When the luminance-color correspondence was achieved, the grayscale image is colorized in a weighted way. Moreover, a new evaluation method is specially designed to assess the confidence of the colorization results. Various experiment results are given to show the validity of this method.
机译:着色旨在为灰度图像添加颜色。在没有任何先验知识的情况下将颜色分配给灰度图像的意义不明确,因此该任务不适当。大多数以前的方法都需要一定量的用户干预,这使着色变得困难。为此,提出了一种基于直方图回归的自动灰度图像着色方法。采用源图像来提供颜色信息。对灰度图像和源图像都执行局部加权回归。因此,可以获得两个图像的特征分布。然后,提出了一种新的匹配方法,通过查找和调整直方图的零点来对齐这些特征。当获得亮度-颜色对应时,灰度图像以加权方式着色。此外,专门设计了一种新的评估方法来评估着色结果的可信度。实验结果表明了该方法的有效性。

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