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Rethinking Retinal Landmark Localization as Pose Estimation: Naïve Single Stacked Network for Optic Disk and Fovea Detection

机译:重新思考视网膜地标定位作为姿势估计:用于光盘和中央凹检测的幼稚单堆叠网络

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摘要

Automatic detection of optic disk and fovea, the two fundamental biological landmarks of the retinal system, is crucial to track the disease progression in a diabetic patient. Recent advances in this direction were mostly limited to applying CNN based networks to aggressively extract visual geometric features. In a departure from that practice, we put forward the notion of treating the landmark detection problem in human eye scans as a pose estimation problem owing to the anatomical geometrical relationship between optic disk and fovea. In this regard, we present Naive Single Stacked Hourglass (NSSH) network which learns the spatial orientation and pixel intensity contrast between optic disk and fovea to accurately pinpoint their locations. NSSH network significantly reduces the mean squared loss, thus outperforming all previously known techniques and establishing a state of the art in both optic disk and fovea localization tasks.
机译:自动检测视盘和中央凹是视网膜系统的两个基本生物学标志,对于追踪糖尿病患者的疾病进展至关重要。在这个方向上的最新进展主要限于应用基于CNN的网络来主动提取视觉几何特征。与该实践不同的是,由于视盘与中央凹之间的解剖学几何关系,我们提出了将人眼扫描中的界标检测问题视为姿势估计问题的概念。在这方面,我们提出了朴素的单层沙漏(NSSH)网络,该网络可以学习视盘和中央凹之间的空间方向和像素强度对比,从而精确地确定它们的位置。 NSSH网络显着降低了均方根损耗,从而胜过了所有先前已知的技术,并在光盘和中央凹定位任务中建立了最先进的技术。

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