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Multiple Illuminant Color Estimation via Statistical Inference on Factor Graphs

机译:通过因子图的统计推断进行多光源颜色估计

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This paper presents a method to recover a spatially varying illuminant color estimate from scenes lit by multiple light sources. Starting with the image formation process, we formulate the illuminant recovery problem in a statistically data-driven setting. To do this, we use a factor graph defined across the scale space of the input image. In the graph, we utilize a set of illuminant prototypes computed using a data driven approach. As a result, our method delivers a pixelwise illuminant color estimate being devoid of libraries or user input. The use of a factor graph also allows for the illuminant estimates to be recovered making use of a maximum a posteriori inference process. Moreover, we compute the probability marginals by performing a Delaunay triangulation on our factor graph. We illustrate the utility of our method for pixelwise illuminant color recovery on widely available data sets and compare against a number of alternatives. We also show sample color correction results on real-world images.
机译:本文提出了一种从多个光源照明的场景中恢复空间变化的光源颜色估计的方法。从图像形成过程开始,我们在统计数据驱动的环境中制定光源恢复问题。为此,我们使用在输入图像的比例空间上定义的因子图。在图中,我们利用了一组使用数据驱动方法计算出的光源原型。结果,我们的方法提供了没有库或用户输入的按像素的光源颜色估计。因子图的使用还允许利用最大的后验推断过程来恢复光源估计。此外,我们通过对因子图执行Delaunay三角剖分来计算概率边际。我们说明了我们的方法在广泛可用的数据集上进行像素级光源颜色恢复的实用性,并与许多替代方法进行了比较。我们还将在真实图像上显示样本颜色校正结果。

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