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Abnormality detection in automated mass screening system of diabetic retinopathy

机译:糖尿病视网膜病变自动筛查系统异常检测

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An approach of abnormality detection from color fundus images for automated mass screening system is proposed in this paper, which uses the object-based color difference image. Four color models, i.e. RGB, Luv, Lab and HVC are evaluated based on the hand labeled feature maps, and Luv and Lab are selected for computing color difference because of their good performance of object classification. The object-based color difference image of bright objects, e.g. exudates and drusen and dark objects, e.g. hemorrhages and blood vessel are obtained respectively according to the 2D histogram distribution on L-u plane, and then watershed transform is performed on the color difference image to extract object candidates. A pre-thresholding and a post-verification procedure are performed to deal with the over-segmentation problem of watershed transform.
机译:本文提出了一种自动质量筛选系统彩色眼底图像的异常检测方法,其使用基于对象的色差图像。基于手动标记的特征映射评估了四种颜色模型,即RGB,LUV,Lab和HVC,并且选择了LUV和Lab,用于计算颜色差异,因为它们对对象分类的良好性能。基于对象的光亮对象的色差图像,例如,渗出物和德鲁森和暗对象,例如根据L-U平面上的2D直方图分布分别获得出血和血管,然后在色差图像上进行流域变换以提取物体候选。执行预阈值和验证程序,以处理流域变换的过分分割问题。

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