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Multilayered Deep Structure Tensor Delaunay Triangulation and Morphing Based Automated Diagnosis and 3D Presentation of Human Macula

机译:多层深度结构张德拉德拉宁三角扫描与人参自动诊断及三维呈现

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摘要

Maculopathy is the group of diseases that affects central vision of a person and they are often associated with diabetes. Many researchers reported automated diagnosis of maculopathy from optical coherence tomography (OCT) images. However, to the best of our knowledge there is no literature that presents a complete 3D suite for the extraction as well as diagnosis of macula. Therefore, this paper presents a multilayered convolutional neural networks (CNN) structure tensor Delaunay triangulation and morphing based fully autonomous system that extracts up to nine retinal and choroidal layers along with the macular fluids. Furthermore, the proposed system utilizes the extracted retinal information for the automated diagnosis of maculopathy as well as for the robust reconstruction of 3D macula of retina. The proposed system has been validated on 41,921 retinal OCT scans acquired from different OCT machines and it significantly outperformed existing state of the art solutions by achieving the mean accuracy of 95.27% for extracting retinal and choroidal layers, mean dice coefficient of 0.90 for extracting fluid pathology and the overall accuracy of 96.07% for maculopathy diagnosis. To the best of our knowledge, the proposed framework is first of its kind that provides a fully automated and complete 3D integrated solution for the extraction of candidate macula along with its fully automated diagnosis against different macular syndromes.
机译:maculopathy是影响一个人的中央视觉的一组疾病,它们通常与糖尿病有关。许多研究人员报告了光学相干断层扫描(OCT)图像的自动诊断小径疗法。然而,据我们所知,没有文献,为提取提供了完整的3D套件以及诊断黄斑。因此,本文提出了一种多层卷积神经网络(CNN)结构张量德拉尼亚三角剖分,基于完全自治系统的变形,可提取至9个视网膜和脉络膜层以及黄斑流体。此外,所提出的系统利用提取的视网膜信息,用于自动诊断Maculopathy的诊断,以及视网膜的3D黄斑的鲁棒重建。拟议的系统已于41,921个视网膜OCT扫描中获取,从不同的OCT机器获得,并且通过实现用于提取视网膜和脉络膜层的平均准确度为95.27%的平均准确性,平均骰子系数为0.90的液体病理和微小疗法诊断的整体准确性为96.07%。据我们所知,拟议的框架首先提供了一种完全自动化和完整的3D集成解决方案,用于提取候选黄斑,以及其全自动诊断与不同的黄斑综合征。

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