Self-supervised learning-enhanced deep learning method for identifying myopic maculopathy in high myopia patients.

iScience

Shanghai Eye Disease Prevention & Treatment Center/Shanghai Eye Hospital, School of Medicine, Tongji University, Shanghai, China.

Published: August 2024

AI Article Synopsis

  • Researchers developed a deep learning (DL) system using self-supervised learning (SSL) to enhance the automatic diagnosis of myopic maculopathy (MM), addressing the challenges of timely care for high myopia patients.
  • The system was trained on a large dataset of 7,906 images and validated on an additional 1,391 images, achieving high accuracy rates (internally 96.8%, externally 89.0%) and strong sensitivity and specificity metrics.
  • The method demonstrated substantial agreement with retinal experts, suggesting its potential to improve early detection and treatment of MM on a larger scale.

Article Abstract

Accurate detection and timely care for patients with high myopia present significant challenges. We developed a deep learning (DL) system enhanced by a self-supervised learning (SSL) approach to improve the automatic diagnosis of myopic maculopathy (MM). Using a dataset of 7,906 images from the Shanghai High Myopia Screening Project and a public validation set of 1,391 images from MMAC2023, our method significantly outperformed conventional techniques. Internally, it achieved 96.8% accuracy, 83.1% sensitivity, and 95.6% specificity, with AUC values of 0.982 and 0.999. Externally, it maintained 89.0% accuracy, 71.7% sensitivity, and 87.8% specificity, with AUC values of 0.978 and 0.973. The model's Cohen's kappa values exceeded 0.8, indicating substantial agreement with retinal experts. Our SSL-enhanced DL approach offers high accuracy and potential to enhance large-scale myopia screenings, demonstrating broader significance in improving early detection and treatment of MM.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11359982PMC
http://dx.doi.org/10.1016/j.isci.2024.110566DOI Listing

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