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Color Correction by Considering the Distribution of Metamers within the Mismatch Gamut

机译:考虑不匹配色域内同色异体分布的色彩校正

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Color correction describes the transformation process between device RGB values and CIEXYZ or CIELAB values. This mapping is in general not unique, because the spectral sensitivities of most of the devices do not satisfy the Luther condition and the acquisition and viewing light sources have a different power spectrum. Therefore, there exists a set of colors with different reflectance spectra which result in the same device RGB response (device metamerism), but leads to different tristimuli for an observer under the viewing light source. To determine an optimal mapping between a given device RGB and a CIELAB color, the distribution of metamers in a metamer mismatch gamut has to be characterized in the viewing CIELAB space. We present a novel method by estimating the distribution of metamers within the mismatch gamut using a Monte Carlo method. The main idea is the construction of a basic collection of metameric blacks (used by the Monte Carlo method) that is calculated by using a representative set of reflectance spectra and performing principle component analysis (PCA) within the black space of the device. The transformation of the sum of a fundamental metamer for the sensor response and the basic collection in the CIELAB color space leads to a point cloud with a centroid approximating the center of gravity of the mismatch gamut. This point is the optimal color correction in the sense of the smallest mean error.
机译:颜色校正描述了设备RGB值与CIEXYZ或CIELAB值之间的转换过程。这种映射通常不是唯一的,因为大多数设备的光谱灵敏度不满足路德条件,并且采集和观察光源具有不同的功率谱。因此,存在一组具有不同反射光谱的颜色,这些颜色会导致相同的设备RGB响应(设备同色异谱),但会导致观察者在观察光源下出现不同的三刺激。为了确定给定设备RGB与CIELAB颜色之间的最佳映射,必须在查看CIELAB空间中表征同聚物异构体不匹配色域中的同聚物分布。我们通过估计使用蒙特卡洛方法的错配域内的异构体的分布,提出了一种新颖的方法。主要思想是构建基本的同分异构黑(通过蒙特卡洛方法使用)集合,该集合是通过使用代表反射光谱集并在设备的黑色空间内执行主成分分析(PCA)来计算的。 CIELAB颜色空间中用于传感器响应的基本同聚物和基本集合的总和的转换会导致点云,其质心近似于失配色域的重心。从最小平均误差的意义上讲,这是最佳的色彩校正。

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