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Deep Learning Fundus Image Analysis for Diabetic Retinopathy and Macular Edema Grading

机译:糖尿病视网膜病变和黄斑水肿分级的深度学习眼底图像分析

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Diabetes is a globally prevalent disease that can cause visible microvascular complications such as diabetic retinopathy and macular edema in the human eye retina, the images of which are today used for manual disease screening and diagnosis. This labor-intensive task could greatly benefit from automatic detection using deep learning technique. Here we present a deep learning system that identifies referable diabetic retinopathy comparably or better than presented in the previous studies, although we use only a small fraction of images (1/4) in training but are aided with higher image resolutions. We also provide novel results for five different screening and clinical grading systems for diabetic retinopathy and macular edema classification, including state-of-the-art results for accurately classifying images according to clinical five-grade diabetic retinopathy and for the first time for the four-grade diabetic macular edema scales. These results suggest, that a deep learning system could increase the cost-effectiveness of screening and diagnosis, while attaining higher than recommended performance, and that the system could be applied in clinical examinations requiring finer grading.
机译:糖尿病是全球普遍存在的疾病,可引起人眼视网膜的可见微血管和黄斑水肿,如糖尿病视网膜疗法和黄斑水肿,其图像今天用于手动疾病筛查和诊断。这种劳动密集型任务可以使用深度学习技术极大地从自动检测中受益。在这里,我们提出了一种深入的学习系统,其识别可比的糖尿病视网膜病变,但是在先前的研究中呈现,尽管我们在训练中仅使用了一小部分图像(<1/4),但是辅助更高的图像分辨率。我们还为糖尿病视网膜病变和黄斑水肿分类提供了新的五种不同筛选和临床分级系统的新结果,包括根据临床五年级糖尿病视网膜病变准确地分类图像的最新结果,并且第一次为四个-Grade糖尿病黄斑水肿鳞片。这些结果表明,深度学习系统可以提高筛选和诊断的成本效益,同时获得高于推荐的性能,并且该系统可以应用于需要更精细分级的临床检查。

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