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A Uniform Framework for Estimating Illumination Chromaticity, Correspondence, and Specular Reflection

机译:估计照明色度,对应性和镜面反射的统一框架

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摘要

Based upon a new correspondence matching invariant called illumination chromaticity constancy, we present a new solution for illumination chromaticity estimation, correspondence searching, and specularity removal. Using as few as two images, the core of our method is the computation of a vote distribution for a number of illumination chromaticity hypotheses via correspondence matching. The hypothesis with the highest vote is accepted as correct. The estimated illumination chromaticity is then used together with the new matching invariant to match highlights, which inherently provides solutions for correspondence searching and specularity removal. Our method differs from the previous approaches: those treat these vision problems separately and generally require that specular highlights be detected in a preprocessing step. Also, our method uses more images than previous illumination chromaticity estimation methods, which increases its robustness because more inputs/constraints are used. Experimental results on both synthetic and real images demonstrate the effectiveness of the proposed method.
机译:基于一个新的对应匹配不变性,称为照明色度常数,我们提出了一种新的解决方案,用于照明色度估计,对应关系搜索和镜面反射去除。使用少至两张图像,我们方法的核心是通过对应匹配为许多照明色度假设计算票数分布。具有最高投票权的假设被认为是正确的。然后,将估计的照明色度与新的匹配不变式一起使用以匹配高光,从而固有地提供了用于对应搜索和镜面反射消除的解决方案。我们的方法不同于以前的方法:那些方法分别处理这些视觉问题,并且通常要求在预处理步骤中检测到镜面高光。同样,我们的方法比以前的照明色度估计方法使用更多的图像,这增加了它的鲁棒性,因为使用了更多的输入/约束。在合成图像和真实图像上的实验结果都证明了该方法的有效性。

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