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Automated diagnosis of referable maculopathy in diabetic retinopathy screening

机译:在糖尿病性视网膜病变筛查中自动诊断可参考的黄斑病变

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This paper introduces an algorithm for the automated diagnosis of referable maculopathy in retinal images for diabetic retinopathy screening. Referable maculopathy is a potentially sight-threatening condition requiring immediate referral to an ophthalmologist from the screening service, and therefore accurate referral is extremely important. The algorithm uses a pipeline of detection and filtering of “peak points” with strong local contrast, segmentation of candidate lesions, extraction of features and classification by a multilayer perceptron. The optic nerve head and fovea are detected, so that the macula region can be identified and scanned. The algorithm is assessed against a reference standard database drawn from the Birmingham City Hospital (UK) diabetic retinopathy screening programme, against two possible modes of use: independent screening, and pre-filtering to reduce human screener workload.
机译:本文介绍了一种用于糖尿病视网膜病变筛查的自动诊断视网膜图像中的黄斑病变的算法。可参考的黄斑病变是一种潜在的威胁视力的疾病,需要立即从筛查服务处转诊给眼科医生,因此准确的转诊极为重要。该算法使用具有强局部对比度的“峰值”检测和过滤,候选病变的分割,特征提取以及多层感知器的分类的流水线。可以检测到视神经乳头和中央凹,从而可以识别和扫描黄斑区域。根据从伯明翰市医院(英国)糖尿病性视网膜病变筛查计划中提取的参考标准数据库对算法进行了评估,并采用了两种可能的使用模式:独立筛查和减少人筛查工作量的预过滤。

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