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A novel automatic image processing algorithm for detection of hard exudates based on retinal image analysis.

机译:一种基于视网膜图像分析的用于检测硬性渗出液的新型自动图像处理算法。

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摘要

We present an automatic image processing algorithm to detect hard exudates. Automatic detection of hard exudates from retinal images is an important problem since hard exudates are associated with diabetic retinopathy and have been found to be one of the most prevalent earliest signs of retinopathy. The algorithm is based on Fisher's linear discriminant analysis and makes use of colour information to perform the classification of retinal exudates. We prospectively assessed the algorithm performance using a database containing 58 retinal images with variable colour, brightness, and quality. Our proposed algorithm obtained a sensitivity of 88% with a mean number of 4.83+/-4.64 false positives per image using the lesion-based performance evaluation criterion, and achieved an image-based classification accuracy of 100% (sensitivity of 100% and specificity of 100%).
机译:我们提出了一种自动图像处理算法来检测硬性渗出物。从视网膜图像自动检测硬性渗出液是一个重要的问题,因为硬性渗出液与糖尿病性视网膜病变有关,并且已被发现是最普遍的视网膜病变最早迹象之一。该算法基于Fisher线性判别分析,并利用颜色信息对视网膜渗出液进行分类。我们使用包含58个颜色,亮度和质量可变的视网膜图像的数据库来前瞻性地评估算法的性能。我们提出的算法使用基于病变的性能评估标准,获得了88%的灵敏度,平均每张图像的假阳性率为4.83 +/- 4.64,并且实现了基于图像的分类精度为100%(灵敏度为100%,特异性为100%)。

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