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A Novel Approach to Detect Outer Retinal Tubulation Using U-Net in SD-OCT Images

机译:SD-OCT图像中使用U-Net检测视网膜外管的新方法

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Optical Coherence Tomography (OCT) has become a basic non-invasive tool in diagnosing and following different types of eye diseases. This technique can produce high-resolution cross-sectional images of retinal layers. Outer retinal tubulation (ORT) is one of the detectable biomarker by SD-OCT. ORTs defined as hyporeflective, tubular structures with hyperreflective borders or reversed within the retina and appear in many retinal diseases, including age-related macular degeneration (AMD). Our aim is to develop an automatic method that can efficiently characterize ORT biomarker. Detection of this biomarker can be challenging because of its variable size, location, and reflectivity. In this paper, we present a fully convolutional U-Net based architecture to detect ORT. The proposed approach is evaluated using a dataset annotated by ophthalmologists. One of the main challenges was the limited amount of training data that we resolve with real-time augmentation during training and using nested cross-validation. Our method achieved near human performance reaching an overall object-based recall score of 0.847 and Dice score of 0.579 on the test set.
机译:光学相干断层扫描(OCT)已成为诊断和跟踪不同类型的眼部疾病的基本非侵入性工具。该技术可以产生视网膜层的高分辨率横截面图像。视网膜外管(ORT)是SD-OCT可检测的生物标志物之一。 ORT被定义为低反射性管状结构,具有高反射性边界或在视网膜内反转,并出现在许多视网膜疾病中,包括与年龄有关的黄斑变性(AMD)。我们的目标是开发一种可以有效表征ORT生物标志物的自动方法。由于其大小,位置和反射率可变,因此检测生物标志物可能具有挑战性。在本文中,我们提出了一种基于全卷积U-Net的体系结构来检测ORT。所提出的方法是使用眼科医生注释的数据集进行评估的。主要挑战之一是有限的训练数据,我们在训练过程中使用嵌套交叉验证解决了实时扩增问题。我们的方法达到了接近人类的性能,在测试集上达到了基于对象的总体回忆得分0.847和Dice得分0.579。

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