Adaptive color enhancement based on multi-scaled Retinex using local contrast of the input image

In-Su Jang, Ho-Gun Ha, Tae-Hyoung Lee, Yeong-Ho Ha
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引用次数: 29

Abstract

Methods of contrast enhancement and color correction are currently among the most active fields in imaging research. The tone curve or histogram of an image is generally used to improve contrast and detail, even though this is often unsatisfactory because the intensity and chromaticity of the illumination vary with geometric position. This has led to the development of the multi-scaled Retinex algorithm in which the in fluence of non-uniform illumination is reduced by partitioning the original image using local average images that are estimated ba sed on Gaussian filtering. However, this algorithm produces color distortion because of the dominant chromaticity of the illumination. To solve this problem, this study introduces a new color correction method for digital images inspired by the multi-scale Retinex algorithm. The method includes selecting appropriate parameters for the Gaussian filters because this is the most important factor in reducing the artifacts introduced by the conventional multi-scale Retinex algorithm. Measures of visual contrast and halo are used to check the condition of artifacts for different values of the Gaussian parameters. The illuminant component is estimated to correct its chromaticity. A saturation compensation method based on preserving the chroma ratio is also used to compensate for the possible lack of saturation resulting from the modified multi-scale Retinex model.
基于多尺度Retinex的自适应色彩增强,利用输入图像的局部对比度
对比度增强和色彩校正方法是目前成像研究中最活跃的领域之一。图像的色调曲线或直方图通常用于改善对比度和细节,尽管这通常是不令人满意的,因为照明的强度和色度随几何位置而变化。这导致了多尺度Retinex算法的发展,该算法通过使用基于高斯滤波估计的局部平均图像对原始图像进行分区来减少非均匀光照的影响。然而,由于照明的主要色度,该算法会产生颜色失真。为了解决这一问题,本研究在多尺度Retinex算法的启发下,引入了一种新的数字图像色彩校正方法。该方法包括选择合适的高斯滤波器参数,因为这是减少传统多尺度Retinex算法引入的伪影的最重要因素。使用视觉对比度和光晕测量来检查不同高斯参数值的伪影状况。估计光源成分以校正其色度。本文还采用了一种基于保留色度比的饱和度补偿方法来补偿修正后的多尺度Retinex模型可能造成的饱和度不足。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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