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首页> 外文期刊>PLoS One >Automatic segmentation of retinal layers in OCT images with intermediate age-related macular degeneration using U-Net and DexiNed
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Automatic segmentation of retinal layers in OCT images with intermediate age-related macular degeneration using U-Net and DexiNed

机译:使用U-Net和Dexining的中间年龄相关性黄斑变性的OCT图像中视网膜层的自动分割。

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摘要

Age-related macular degeneration (AMD) is an eye disease that can cause visual impairment and affects the elderly over 50 years of age. AMD is characterized by the presence of drusen, which causes changes in the physiological structure of the retinal pigment epithelium (RPE) and the boundaries of the Bruch’s membrane layer (BM). Optical coherence tomography is one of the main exams for the detection and monitoring of AMD, which seeks changes through the evaluation of successive sectional cuts in the search for morphological changes caused by drusen. The use of CAD (Computer-Aided Detection) systems has contributed to increasing the chances of correct detection, assisting specialists in diagnosing and monitoring disease. Thus, the objective of this work is to present a method for the segmentation of the inner limiting membrane (ILM), retinal pigment epithelium, and Bruch’s membrane in OCT images of healthy and Intermediate AMD patients. The method uses two deep neural networks, U-Net and DexiNed to perform the segmentation. The results were promising, reaching an average absolute error of 0.49 pixel for ILM, 0.57 for RPE, and 0.66 for BM.
机译:年龄相关的黄斑变性(AMD)是一种可引起视觉障碍的眼病,影响50岁以上的老年人。 AMD的特征在于德鲁森的存在,这导致视网膜颜料上皮(RPE)的生理结构的变化以及Bruch膜层(Bm)的边界。光学相干断层扫描是AMD检测和监测的主要考试之一,它试图通过评估在寻找由Drusen引起的形态学变化中的连续分区切口的评估。使用CAD(计算机辅助检测)系统有助于增加正确检测的机会,协助专家诊断和监测疾病。因此,本作作品的目的是提出一种用于在健康和中间AMD患者的OCT图像中分割内部限制膜(ILM),视网膜颜料上皮和BRUCH膜的方法。该方法使用两个深度神经网络,U-Net并Dexining以执行分割。结果是有前途的,达到ILM的平均绝对误差为0.49像素,RPE为0.57,BM为0.66。

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