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Classification of advanced and early stages of diabetic retinopathy from non-diabetic subjects by an ordinary least squares modeling method applied to OCTA images

机译:通过普通最小二乘建模方法对非糖尿病受试者的糖尿病视网膜病变的先进和早期阶段进行分类应用于Octa图像

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摘要

As the prevalence of diabetic retinopathy (DR) continues to rise, there is a need to develop computer-aided screening methods. The current study reports and validates an ordinary least squares (OLS) method to model optical coherence tomography angiography (OCTA) images and derive OLS parameters for classifying proliferative DR (PDR) and no/mild non-proliferative DR (NPDR) from non-diabetic subjects. OLS parameters were correlated with vessel metrics quantified from OCTA images and were used to determine predicted probabilities of PDR, no/mild NPDR, and non-diabetics. The classification rates of PDR and no/mild NPDR from non-diabetic subjects were 94% and 91%, respectively. The method had excellent predictive ability and was validated. With further development, the method may have potential clinical utility and contribute to image-based computer-aided screening and classification of stages of DR and other ocular and systemic diseases.
机译:随着糖尿病视网膜病变(DR)的患病率继续上升,需要开发计算机辅助筛查方法。目前的研究报告并验证了模拟光学相干断层造影血管造影(OctA)图像的普通最小二乘(OLS)方法,并衍生出来自非糖尿病的增殖博士(PDR)和NO /温和的非增殖博士(NPDR)的OLS参数主题。 OLS参数与从Octa图像量化的血管度量相关,并用于确定PDR,NO / MILD NPDR和非糖尿病患者的预测概率。来自非糖尿病受试者的PDR和NO / MILD NDD的分类率分别为94%和91%。该方法具有良好的预测能力,并经过验证。通过进一步的发展,该方法可能具有潜在的临床实用性,并有助于博士和其他眼部和全身疾病的基于图像的计算机辅助筛选和分类。

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