利用感兴趣区域的全向投影和白斑在x -色度空间上的平移获取固有图像

Dal-Hyoun Kim, Dong-Guk Hwang, Woo-Ram Lee, Byoung-Min Jun
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引用次数: 0

摘要

本征图像的算法减少了由于黑体辐射体温度引起的RGB图像的色差。这些算法基于参考光,检测单一不变方向,在真实图像中,当场景光源为彩色光源时,可能存在多个不变方向,因此算法的能力较弱。为了解决这些问题,本文提出了一种利用感兴趣区域的全向投影和白块在-色度空间的平移来获取内在图像的方法。由于在三维RGB空间中分析图像不容易,因此本文也采用了不考虑亮度因素的-色度。通过白斑的平移降低彩色光源的影响后,通过感兴趣区域在该色度空间的全向投影来检测一个不变的方向。当RGB图像有多个不变方向时,bin只选择一个ROI,它在3D直方图中频率最高。然后通过投影和逆变换这两种运算,得到内像。在实验中,测试图像采用Ebner提出的4个数据集,评价方法为:不变方向标准差、恒定测度、色彩空间测度和色彩恒定测度。实验结果表明,该方法的标准差小于熵值,性能比对比算法提高2倍。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Acquisition of Intrinsic Image by Omnidirectional Projection of ROI and Translation of White Patch on the X-chromaticity Space
Algorithms for intrinsic images reduce color differences in RGB images caused by the temperature of black-body radiators. Based on the reference light and detecting single invariant direction, these algorithms are weak in real images which can have multiple invariant directions when the scene illuminant is a colored illuminant. To solve these problems, this paper proposes a method of acquiring an intrinsic image by omnidirectional projection of an ROI and a translation of white patch in the -chromaticity space. Because it is not easy to analyze an image in the three-dimensional RGB space, the -chromaticity is also employed without the brightness factor in this paper. After the effect of the colored illuminant is decreased by a translation of white patch, an invariant direction is detected by omnidirectional projection of an ROI in this chromaticity space. In case the RGB image has multiple invariant directions, only one ROI is selected with the bin, which has the highest frequency in 3D histogram. And then the two operations, projection and inverse transformation, make intrinsic image acquired. In the experiments, test images were four datasets presented by Ebner and evaluation methods was the follows: standard deviation of the invariant direction, the constancy measure, the color space measure and the color constancy measure. The experimental results showed that the proposed method had lower standard deviation than the entropy, that its performance was two times higher than the compared algorithm.
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