不同成像条件下抑制假色的图像颜色校正方法

Dongsheng Xu, Shi Bao, G. Tanaka, Saoying Ma, Jingping Yang, Fengyun Zuo
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引用次数: 1

摘要

由于成像条件的不同,图像的色彩再现往往不同;因此,颜色校准方法被开发出来以统一色彩再现。迭代分布传递(IDT)就是这样一种方法,通过匹配参考图像的颜色分布,可以对输入图像的大多数像素进行良好的颜色校准。然而,这种方法可能会导致不自然的颜色,称为假色。在本研究中,我们提出了一种新的颜色校准方法,有效地抑制了假色,其结果与IDT相似。将输入图像投影到称为基的特定幂次上,将其乘以相应的投影系数并相加,得到投影结果。投影系数可以通过最小化目标函数得到,目标函数是投影结果与IDT结果之间的均方误差。考虑到IDT结果中的假颜色预计与相邻像素的颜色相似,因此在目标函数中添加与颜色相似度相关的项来解决这个问题。颜色相似度可以通过输入图像的相邻像素之间的色差来测量。通过确保输入图像中的相似颜色在输出图像中保持相似,可以抑制假色。在实验中,我们使用假色指数、Kullback-Leibler散度和视觉评价对校准结果进行了评价,一致证明该方法与其他方法相比具有更好的颜色校准效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Color Calibration Method for Images Taken by Different Imaging Conditions Which Suppresses False Color
Owing to different imaging conditions, color reproduction of images is usually different; hence, color calibration methods have been developed to unify color reproduction. Iterative distribution transfer (IDT) is one such method that can achieve good color calibration for most pixels of an input image by matching the color distribution of a reference image. This method, however, may lead to unnatural colors, called false colors. In this study, we propose a new color calibration method, which effectively suppresses false colors, whose result is similar to that obtained via the IDT. The input image is projected to specific powers called bases, which are multiplied by the corresponding projection coefficients and added to obtain the projection result. The projection coefficients can be obtained by minimizing the objective function, which is the mean-square error between the projection result and the IDT result. Considering that a false color in the IDT results is expected to be similar to the color of an adjacent pixel, a color-similarity-related item is added to the objective function to address this. Color similarity can be measured by the chromatic aberration between the adjacent pixels of the input image. By ensuring that similar colors in the input image remain similar in the output image, false colors can be suppressed. For the experiment, we use false color index, Kullback-Leibler divergence, and visual evaluation to evaluate the calibration results, which consistently proves that this method offers a better color calibration effect compared with other methods.
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