一种基于深度学习的增强OCT图像分类技术

J. P., Krishnamoorthy N, S. S, Tamilkumar R, Yokesh P
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引用次数: 0

摘要

在医学成像领域,计算机辅助检测(CADe)或计算机辅助诊断(CADx)是一种以计算机为基础,帮助医生快速做出决策的系统。因此,大多数医生使用这种cad来更快地检测和诊断眼部疾病。视网膜疾病主要有脉络膜新生血管化(CNV)、Drusen和糖尿病性黄斑水肿(DME)。这些眼部疾病可导致部分或完全丧失视力。光学相干断层扫描(OCT)广泛应用于这些眼部疾病的诊断。本文给出了几种网络模型的比较结果,并在预训练模型的网络上实现了迁移学习。训练和验证的数据集取自Kaggle网站,其中包含大约84.5k张图像。自定义序列模型比其他网络模型获得了更高的验证精度。
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An Enhanced Technique To Classify OCT Images Using Deep Learning
In medical imaging field, computer-aided detection (CADe) or computer-aided diagnosis (CADx) is the computer-based system that helps doctors to take decisions swiftly. So, majority of doctors use this kind of CADs for the faster detection and diagnosis of ocular diseases. There are some major retinal diseases, they are Choroidal Neo-Vascularization (CNV), Drusen, and Diabetic Macular Edema (DME). These ocular diseases can result in partial or complete loss of vision. Optical Coherence Tomography (OCT) is widely used in diagnosis of these ocular diseases. In this paper, it have shown the comparison results of several network model and transfer learning on networks with pre-trained models was achieved. The dataset for the training and validation was taken from the Kaggle website which contains an approximate of 84.5k images. The custom-built sequential model has achieved more validation accuracy than other network models.
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