论文标题

UW-OCTA图像的细分,分类和质量评估,用于诊断糖尿病性视网膜病变

Segmentation, Classification, and Quality Assessment of UW-OCTA Images for the Diagnosis of Diabetic Retinopathy

论文作者

Li, Yihao, Zeghlache, Rachid, Brahim, Ikram, Xu, Hui, Tan, Yubo, Conze, Pierre-Henri, Lamard, Mathieu, Quellec, Gwenolé, Daho, Mostafa El Habib

论文摘要

糖尿病性视网膜病(DR)是糖尿病的严重并发症,可能导致失明。尽管存在有效的治疗方法(尤其是激光器)减缓疾病进展并预防失明,但最好的治疗方法是通过与眼科医生的定期检查(至少每年一次)进行预防。光学相干断层扫描血管造影(OCTA)允许可视化视网膜血管形成,而在微血管水平上的脉络膜非常详细。这使医生可以更精确地诊断DR。近年来,随着深度学习和计算机硬件的改进,出现了用于DR诊断的算法。但是,这些通常集中在视网膜摄影上。没有当前的方法可以使用超宽的八颗(UW-OCTA)自动分析DR。糖尿病性视网膜病分析挑战2022(DRAC22)提供了标准化的UW-OCTA数据集,以训练和测试各种算法对三个任务的有效性:病变细分,质量评估和DR分级。在本文中,我们将针对DRAC22挑战的三个任务介绍解决方案。获得的结果是有希望的,使我们能够将自己定位在细分任务的前五名,质量评估任务的前四名以及DR分级任务的前三名。该代码可在\ url {https://github.com/mostafa-ehd/diabetic_retinopathy_octa}获得。

Diabetic Retinopathy (DR) is a severe complication of diabetes that can cause blindness. Although effective treatments exist (notably laser) to slow the progression of the disease and prevent blindness, the best treatment remains prevention through regular check-ups (at least once a year) with an ophthalmologist. Optical Coherence Tomography Angiography (OCTA) allows for the visualization of the retinal vascularization, and the choroid at the microvascular level in great detail. This allows doctors to diagnose DR with more precision. In recent years, algorithms for DR diagnosis have emerged along with the development of deep learning and the improvement of computer hardware. However, these usually focus on retina photography. There are no current methods that can automatically analyze DR using Ultra-Wide OCTA (UW-OCTA). The Diabetic Retinopathy Analysis Challenge 2022 (DRAC22) provides a standardized UW-OCTA dataset to train and test the effectiveness of various algorithms on three tasks: lesions segmentation, quality assessment, and DR grading. In this paper, we will present our solutions for the three tasks of the DRAC22 challenge. The obtained results are promising and have allowed us to position ourselves in the TOP 5 of the segmentation task, the TOP 4 of the quality assessment task, and the TOP 3 of the DR grading task. The code is available at \url{https://github.com/Mostafa-EHD/Diabetic_Retinopathy_OCTA}.

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