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A Framework for the Discovery of Retinal Biomarkers in Optical Coherence Tomography Angiography (OCTA)

机译:在光学相干断层造影血管造影中发现视网膜生物标志物的框架(OctA)

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摘要

Recent studies have demonstrated the potential of OCTA retinal imaging for the discovery of biomarkers of vascular disease of the eye and other organs. Furthermore, advances in deep learning have made it possible to train algorithms for the automated detection of such biomarkers. However, two key limitations of this approach are the need for large numbers of labeled images to train the algorithms, which are often not met by the typical single-centre prospective studies in the literature, and the lack of interpretability of the features learned during training. In the current study, we developed a network analysis framework to characterise retinal vasculature where geometric and topological information are exploited to increase the performance of classifiers trained on tens of OCTA images. We demonstrate our approach in two different diseases with a retinal vascular footprint: diabetic retinopathy (DR) and chronic kidney disease (CKD). Our approach enables the discovery of previously unreported retinal vascular morphological differences in DR and CKD, and demonstrate the potential of OCTA for automated disease assessment.
机译:最近的研究表明,Octa视网膜成像用于发现眼睛和其他器官的血管疾病的生物标志物。此外,深度学习的进步使得可以为这些生物标志物的自动检测训练算法。然而,这种方法的两个关键限制是需要大量标记的图像来训练算法,这些图像通常不会被文献中的典型单中心前瞻性研究达到,以及在训练期间学到的特征缺乏可解释性。在目前的研究中,我们开发了一种网络分析框架,以表征视网膜脉管系统,其中利用几何和拓扑信息来提高在数十个Octa图像上培训的分类器的性能。我们在两种不同疾病中证明了具有视网膜血管足迹的两种不同疾病:糖尿病视网膜病变(DR)和慢性肾病(CKD)。我们的方法能够发现先前未报告的视网膜血管形态差异,并证明了八藻用于自动疾病评估的潜力。

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