A manifold based methodology for color constancy

A. Mathew, A. Alex, V. Asari
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引用次数: 3

Abstract

In this paper, we propose a manifold-based methodology for color constancy. It is observed that the center surround information of an image creates a manifold in color space. The relationship between the points in the manifold is modeled as a line. The human visual system is capable of learning these relationships. This is the basis of color constancy. In illumination correction, the image in the reference illumination is operated on with a wide Gaussian function to extract the global illumination information. The global illumination information creates a manifold in color space which is learnt by the system as a line. An image in a different color perception creates a different manifold in color space. To transform the color perception of a scene in a given illumination to the reference color perception, the color relationships in the reference color perception are applied on the new image. This is achieved by projecting the pixels in the new image to the line representing the manifold of reference color perception. This model can be used for color correction of images with different color perceptions to a learnt color perception. This method, unlike other approaches, has a single step convergence and hence is faster.
基于流形的颜色恒定性方法
在本文中,我们提出了一种基于流形的颜色常数方法。可以观察到,图像的中心环绕信息在色彩空间中创建了一个流形。流形中点之间的关系被建模为一条线。人类的视觉系统能够学习这些关系。这是色彩恒常性的基础。在光照校正中,对参考光照下的图像进行宽高斯函数处理,提取全局光照信息。全局照明信息在色彩空间中创建一个流形,系统将其作为一条线学习。不同颜色感知的图像会在色彩空间中产生不同的流形。为了将给定照明下的场景颜色感知转换为参考颜色感知,将参考颜色感知中的颜色关系应用到新图像上。这是通过将新图像中的像素投影到表示参考颜色感知歧管的线上来实现的。该模型可用于对具有不同颜色感知的图像进行颜色校正。与其他方法不同的是,这种方法只有一步收敛,因此速度更快。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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