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Luminosity and contrast normalization in color retinal images based on standard reference image

机译:基于标准参考图像的彩色视网膜图像的亮度和对比度归一化

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Color retinal images are used manually or automatically for diagnosis and monitoring progression of a retinal diseases. Color retinal images have large luminosity and contrast variability within and across images due to the large natural variations in retinal pigmentation and complex imaging setups. The quality of retinal images may affect the performance of automatic screening tools therefore different normalization methods are developed to uniform data before applying any further analysis or processing. In this paper we propose a new reliable method to remove non-uniform illumination in retinal images and improve their contrast based on contrast of the reference image. The non-uniform illumination is removed by normalizing luminance image using local mean and standard deviation. Then the contrast is enhanced by shifting histograms of uniform illuminated retinal image toward histograms of the reference image to have similar histogram peaks. This process improve the contrast without changing inter correlation of pixels in different color channels. In compliance with the way humans perceive color, the uniform color space of LUV is used for normalization. The proposed method is widely tested on large dataset of retinal images with present of different pathologies such as Exudate, Lesion, Hemorrhages and Cotton-Wool and in different illumination conditions and imaging setups. Results shows that proposed method successfully equalize illumination and enhances contrast of retinal images without adding any extra artifacts.
机译:彩色视网膜图像可手动或自动用于诊断和监测视网膜疾病的进展。由于视网膜色素沉着的自然变化和复杂的成像设置,彩色视网膜图像在图像内部和图像之间具有较大的亮度和对比度变化。视网膜图像的质量可能会影响自动筛选工具的性能,因此在应用任何进一步的分析或处理之前,已开发出不同的归一化方法来统一数据。在本文中,我们提出了一种新的可靠方法来消除视网膜图像中的不均匀照明,并基于参考图像的对比度来改善其对比度。通过使用局部均值和标准差对亮度图像进行归一化,可以消除不均匀照明。然后,通过将均匀照明的视网膜图像的直方图移向参考图像的直方图以具有相似的直方图峰,可以增强对比度。该过程在不改变不同颜色通道中的像素的互相关的情况下提高了对比度。按照人类感知颜色的方式,将LUV的统一颜色空间用于归一化。所提出的方法在视网膜图像的大型数据集上得到了广泛测试,该图像具有不同的病理表现,例如渗出液,病变,出血和棉绒,并且在不同的照明条件和成像设置下。结果表明,所提出的方法成功地均衡了照明并增强了视网膜图像的对比度,而没有增加任何额外的伪像。

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