AI-Based Fully Automatic Analysis of Retinal Vascular Morphology in Pediatric High Myopia
Yinzheng Zhao, Zhihao Zhao, Junjie Yang, Li Li, M. Ali Nasseri, Daniel, Zapp

TL;DR
This study developed an AI-based software using CNNs to automatically analyze retinal vascular morphology in pediatric high myopia, revealing significant structural differences across myopia stages with high classification accuracy.
Contribution
The paper introduces a novel AI model combining CNN and the latter module for automated retinal vascular analysis in pediatric myopia, achieving high accuracy and detailed morphological insights.
Findings
Significant reduction in main angle of retinal vessels in high myopia.
High model accuracy of 94.19% in classifying myopia stages.
Distinct vascular parameter differences across myopia severity levels.
Abstract
Purpose: To investigate the changes in retinal vascular structures associated various stages of myopia by designing automated software based on an artif intelligencemodel. Methods: The study involved 1324 pediatric participants from the National Childr Medical Center in China, and 2366 high-quality retinal images and correspon refractive parameters were obtained and analyzed. Spherical equivalent refrac(SER) degree was calculated. We proposed a data analysis model based c combination of the Convolutional Neural Networks (CNN) model and the atter module to classify images, segment vascular structures, and measure vasc parameters, such as main angle (MA), branching angle (BA), bifurcation edge al(BEA) and bifurcation edge coefficient (BEC). One-way ANOVA compared param measurements betweenthenormalfundus,lowmyopia,moderate myopia,and high myopia group. Results: There were 279 (12.38%)…
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Taxonomy
TopicsRetinal Imaging and Analysis · Retinopathy of Prematurity Studies · Retinal and Optic Conditions
