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利用深度学习从眼底图像中检测贫血

Detection of anaemia from retinal fundus images via deep learning.

机构信息

Google Health, Google, Mountain View, CA, USA.

Google Research, Google, Mountain View, CA, USA.

出版信息

Nat Biomed Eng. 2020 Jan;4(1):18-27. doi: 10.1038/s41551-019-0487-z. Epub 2019 Dec 23.

Abstract

Owing to the invasiveness of diagnostic tests for anaemia and the costs associated with screening for it, the condition is often undetected. Here, we show that anaemia can be detected via machine-learning algorithms trained using retinal fundus images, study participant metadata (including race or ethnicity, age, sex and blood pressure) or the combination of both data types (images and study participant metadata). In a validation dataset of 11,388 study participants from the UK Biobank, the fundus-image-only, metadata-only and combined models predicted haemoglobin concentration (in g dl) with mean absolute error values of 0.73 (95% confidence interval: 0.72-0.74), 0.67 (0.66-0.68) and 0.63 (0.62-0.64), respectively, and with areas under the receiver operating characteristic curve (AUC) values of 0.74 (0.71-0.76), 0.87 (0.85-0.89) and 0.88 (0.86-0.89), respectively. For 539 study participants with self-reported diabetes, the combined model predicted haemoglobin concentration with a mean absolute error of 0.73 (0.68-0.78) and anaemia an AUC of 0.89 (0.85-0.93). Automated anaemia screening on the basis of fundus images could particularly aid patients with diabetes undergoing regular retinal imaging and for whom anaemia can increase morbidity and mortality risks.

摘要

由于贫血的诊断测试具有侵入性,且相关筛查费用较高,因此这种病症常常未被发现。在这里,我们展示了可以通过使用眼底图像、研究参与者的元数据(包括种族、年龄、性别和血压)或这两种数据类型(图像和研究参与者元数据)训练的机器学习算法来检测贫血。在来自英国生物库的 11388 名研究参与者的验证数据集中,仅使用眼底图像、仅使用元数据和组合模型预测血红蛋白浓度(以 g/dl 为单位)的平均绝对误差值分别为 0.73(95%置信区间:0.72-0.74)、0.67(0.66-0.68)和 0.63(0.62-0.64),相应的受试者工作特征曲线下面积(AUC)值分别为 0.74(0.71-0.76)、0.87(0.85-0.89)和 0.88(0.86-0.89)。对于 539 名自我报告患有糖尿病的研究参与者,组合模型预测血红蛋白浓度的平均绝对误差为 0.73(0.68-0.78),贫血的 AUC 为 0.89(0.85-0.93)。基于眼底图像的自动贫血筛查对于经常接受视网膜成像检查且贫血可能增加发病率和死亡率的糖尿病患者特别有帮助。

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