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类别相关的颜色恒常性。

Color constancy by category correlation.

机构信息

Computer Vision Center, Campus Universitat Autònoma de Barcelona (UAB), Bellatera, Barcelona, Spain.

出版信息

IEEE Trans Image Process. 2012 Apr;21(4):1997-2007. doi: 10.1109/TIP.2011.2171353. Epub 2011 Oct 13.

Abstract

Finding color representations that are stable to illuminant changes is still an open problem in computer vision. Until now, most approaches have been based on physical constraints or statistical assumptions derived from the scene, whereas very little attention has been paid to the effects that selected illuminants have on the final color image representation. The novelty of this paper is to propose perceptual constraints that are computed on the corrected images. We define the category hypothesis, which weights the set of feasible illuminants according to their ability to map the corrected image onto specific colors. Here, we choose these colors as the universal color categories related to basic linguistic terms, which have been psychophysically measured. These color categories encode natural color statistics, and their relevance across different cultures is indicated by the fact that they have received a common color name. From this category hypothesis, we propose a fast implementation that allows the sampling of a large set of illuminants. Experiments prove that our method rivals current state-of-art performance without the need for training algorithmic parameters. Additionally, the method can be used as a framework to insert top-down information from other sources, thus opening further research directions in solving for color constancy.

摘要

在计算机视觉中,找到对光照变化稳定的颜色表示仍然是一个未解决的问题。到目前为止,大多数方法都是基于物理约束或从场景中得出的统计假设,而很少关注所选光源对最终颜色图像表示的影响。本文的新颖之处在于提出了基于校正图像的感知约束。我们定义了类别假设,根据它们将校正图像映射到特定颜色的能力对可行光源进行加权。在这里,我们选择这些颜色作为与基本语言术语相关的通用颜色类别,这些颜色类别已经经过心理物理学测量。这些颜色类别编码了自然颜色统计数据,并且它们在不同文化中的相关性表明它们具有共同的颜色名称。从这个类别假设中,我们提出了一种快速实现方法,可以对大量光源进行采样。实验证明,我们的方法在不需要训练算法参数的情况下可以与当前最先进的性能相媲美。此外,该方法可以用作从其他来源插入自上而下信息的框架,从而在解决颜色恒常性问题方面开辟了进一步的研究方向。

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