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基于深度学习的糖尿病视网膜病变预测,使用对比度受限自适应直方图均衡化(CLAHE)和增强超分辨率生成对抗网络(ESRGAN)进行图像增强

Deep Learning-Based Prediction of Diabetic Retinopathy Using CLAHE and ESRGAN for Enhancement.

作者信息

Alwakid Ghadah, Gouda Walaa, Humayun Mamoona

机构信息

Department of Computer Science, College of Computer and Information Sciences, Jouf University, Sakakah 72341, Al Jouf, Saudi Arabia.

Department of Electrical Engineering, Faculty of Engineering at Shoubra, Benha University, Cairo 11672, Egypt.

出版信息

Healthcare (Basel). 2023 Mar 15;11(6):863. doi: 10.3390/healthcare11060863.

Abstract

Vision loss can be avoided if diabetic retinopathy (DR) is diagnosed and treated promptly. The main five DR stages are none, moderate, mild, proliferate, and severe. In this study, a deep learning (DL) model is presented that diagnoses all five stages of DR with more accuracy than previous methods. The suggested method presents two scenarios: case 1 with image enhancement using a contrast limited adaptive histogram equalization (CLAHE) filtering algorithm in conjunction with an enhanced super-resolution generative adversarial network (ESRGAN), and case 2 without image enhancement. Augmentation techniques were then performed to generate a balanced dataset utilizing the same parameters for both cases. Using Inception-V3 applied to the Asia Pacific Tele-Ophthalmology Society (APTOS) datasets, the developed model achieved an accuracy of 98.7% for case 1 and 80.87% for case 2, which is greater than existing methods for detecting the five stages of DR. It was demonstrated that using CLAHE and ESRGAN improves a model's performance and learning ability.

摘要

如果糖尿病视网膜病变(DR)能够得到及时诊断和治疗,视力丧失是可以避免的。糖尿病视网膜病变主要有五个阶段,分别是无病变、中度、轻度、增殖期和重度。在本研究中,提出了一种深度学习(DL)模型,该模型对糖尿病视网膜病变所有五个阶段的诊断比以往方法更准确。所提出的方法有两种情况:情况1是使用对比度受限自适应直方图均衡化(CLAHE)滤波算法结合增强型超分辨率生成对抗网络(ESRGAN)进行图像增强;情况2是不进行图像增强。然后执行增强技术,为两种情况使用相同参数生成一个平衡数据集。将Inception-V3应用于亚太远程眼科学会(APTOS)数据集,所开发的模型在情况1下准确率达到98.7%,在情况2下准确率达到80.87%,高于现有检测糖尿病视网膜病变五个阶段的方法。结果表明,使用CLAHE和ESRGAN可提高模型的性能和学习能力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/857e/10048517/b965d659a083/healthcare-11-00863-g001.jpg

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