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Improvement of Automatic Hemorrhages Detection Methods using Brightness Correction on Fundus Images

机译:基于眼底校正的自动出血检测方法的改进

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We have been developing several automated methods for detecting abnormalities in fundus images. The purpose of this study is to improve our automated hemorrhage detection method to help diagnose diabetic retinopathy. We propose a new method for preprocessing and false positive elimination in the present study. The brightness of the fundus image was changed by the nonlinear curve with brightness values of the hue saturation value (HSV) space. In order to emphasize brown regions, gamma correction was performed on each red, green, and blue-bit image. Subsequently, the histograms of each red, blue, and blue-bit image were extended. After that, the hemorrhage candidates were detected. The brown regions indicated hemorrhages and blood vessels and their candidates were detected using density analysis. We removed the large candidates such as blood vessels. Finally, false positives were removed by using a 45-feature analysis. To evaluate the new method for the detection of hemorrhages, we examined 125 fundus images, including 35 images with hemorrhages and 90 normal images. The sensitivity and specificity for the detection of abnormal cases was were 80% and 88%, respectively. These results indicate that the new method may effectively improve the performance of our computer-aided diagnosis system for hemorrhages.
机译:我们一直在开发几种自动化方法,用于检测眼底图像的异常。本研究的目的是提高我们的自动出血检测方法,以帮助诊断糖尿病视网膜病变。我们提出了一种在本研究中预处理和假阳性消除的新方法。非线性图像的亮度由非线性曲线改变,具有色调饱和值(HSV)空间的亮度值。为了强调棕色区域,对每个红色,绿色和蓝色比特图像进行伽马校正。随后,延长了每个红色,蓝色和蓝比特图像的直方图。之后,检测出血候选者。棕色区域表明出血和血管,使用密度分析检测其候选物。我们删除了血管等大候选人。最后,通过使用45特征分析去除误报。为了评估检测出血的新方法,我们检查了125个眼底图像,其中包括出血和90个正常图像的35个图像。检测异常情况的敏感性和特异性分别为80%和88%。这些结果表明,新方法可有效提高计算机辅助诊断系统对出血的性能。

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