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Memory color assisted illuminant estimation through pixel clustering

机译:通过像素聚类辅助发光体估计

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The under constrained nature of illuminant estimation determines that in order to resolve the problem, certain assumptions are needed, such as the gray world theory. Including more constraints in this process may help explore the useful information in an image and improve the accuracy of the estimated illuminant, providing that the constraints hold. Based on the observation that most personal images have contents of one or more of the following categories: neutral objects, human beings, sky, and plants, we propose a method for illuminant estimation through the clustering of pixels of gray and three dominant memory colors: skin tone, sky blue, and foliage green. Analysis shows that samples of the above colors cluster around small areas under different illuminants and their characteristics can be used to effectively detect pixels falling into each of the categories. The algorithm requires the knowledge of the spectral sensitivity response of the camera, and a spectral database consisted of the CIE standard illuminants and reflectance or radiance database of samples of the above colors.
机译:照明剂估计的下约束性质决定了为了解决问题,需要某些假设,例如灰色世界理论。在该过程中包括更多约束可以帮助探索图像中的有用信息,并提高估计的发光体的准确性,从而提供约束保持。基于观察到大多数个人图像具有以下一类或多个类别的内容:中性对象,人类,天空和植物,我们通过灰色和三个主流记忆颜色的像素聚类提出了一种发光估计方法:肤色,天蓝色和叶子绿色。分析表明,上述颜色簇的样本在不同的光源下的小区域及其特征可以用于有效地检测落入每个类别的像素。该算法需要了解相机的光谱灵敏度响应,并且光谱数据库由上述颜色的样本的CIE标准光源和反射率或辐射数据库组成。

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