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使用深度学习方法从非糖尿病性视网膜病变眼底图像中检测糖尿病

Diabetes detection from non-diabetic retinopathy fundus images using deep learning methodology.

作者信息

Rom Yovel, Aviv Rachelle, Cohen Gal Yaakov, Friedman Yehudit Eden, Ianchulev Tsontcho, Dvey-Aharon Zack

机构信息

AEYE Health Inc., New York City, NY, USA.

The Goldschleger Eye Institute, Sheba Medical Center, Tel Hashomer, Israel.

出版信息

Heliyon. 2024 Aug 22;10(16):e36592. doi: 10.1016/j.heliyon.2024.e36592. eCollection 2024 Aug 30.

Abstract

Diabetes is one of the leading causes of morbidity and mortality in the United States and worldwide. Traditionally, diabetes detection from retinal images has been performed only using relevant retinopathy indications. This research aimed to develop an artificial intelligence (AI) machine learning model which can detect the presence of diabetes from fundus imagery of eyes without any diabetic eye disease. A machine learning algorithm was trained on the EyePACS dataset, consisting of 47,076 images. Patients were also divided into cohorts based on disease duration, each cohort consisting of patients diagnosed within the timeframe in question (e.g., 15 years) and healthy participants. The algorithm achieved 0.86 area under receiver operating curve (AUC) in detecting diabetes per patient visit when averaged across camera models, and AUC 0.83 on the task of detecting diabetes per image. The results suggest that diabetes may be diagnosed non-invasively using fundus imagery alone. This may enable diabetes diagnosis at point of care, as well as other, accessible venues, facilitating the diagnosis of many undiagnosed people with diabetes.

摘要

糖尿病是美国及全球发病和死亡的主要原因之一。传统上,视网膜图像的糖尿病检测仅依据相关的视网膜病变指征进行。本研究旨在开发一种人工智能(AI)机器学习模型,该模型能够从无任何糖尿病眼病的眼底图像中检测出糖尿病的存在。一种机器学习算法在由47,076张图像组成的EyePACS数据集上进行了训练。患者还根据病程被分为不同队列,每个队列由在相关时间范围内(如15年)被诊断出的患者以及健康参与者组成。当对各个相机型号进行平均计算时,该算法在每次患者就诊时检测糖尿病的受试者工作特征曲线下面积(AUC)达到0.86,在每张图像检测糖尿病的任务中AUC为0.83。结果表明,仅使用眼底图像即可无创诊断糖尿病。这可能使糖尿病在医疗点以及其他可及场所得以诊断,从而有助于诊断许多未被诊断出的糖尿病患者。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0981/11386038/0d8470794a01/gr1.jpg

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