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Comparison of Agreement and Accuracy using Binocular Wavefront Optometer with Autorefractor and Phoropter
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Routine blood tests and machine learning identify complications in high myopia.

Shengjie Li1,2,3,4, Jun Ren5, Fenglin Wang6

  • 1Department of Clinical Laboratory, Eye & ENT Hospital, Fudan University, Shanghai, China. lishengjie6363020@163.com.

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Summary

A new machine learning model uses routine blood tests to identify individuals at high risk for severe complications from high myopia. This blood-based screening approach aids early detection and referral, preventing irreversible vision loss.

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Area of Science:

  • Ophthalmology
  • Medical Imaging
  • Machine Learning

Background:

  • High myopia poses significant risks for serious eye conditions like glaucoma and retinal detachment, leading to irreversible vision loss.
  • Current screening methods rely on specialized imaging and limited specialist availability, hindering widespread population screening.

Purpose of the Study:

  • To develop and validate a machine learning model that identifies individuals at increased risk of high myopia complications using routine blood test results.
  • To assess the model's accuracy and effectiveness in real-world screening settings.

Main Methods:

  • A machine learning model was developed and validated using data from 10,661 participants across multiple centers.
  • The model's performance was further evaluated in independent cohorts and a large-scale community screening study involving 311,254 adults.

Main Results:

  • The model demonstrated high accuracy across different centers (AUROC 0.9010-0.9649).
  • It successfully flagged individuals diagnosed with high myopia complications in a prospective follow-up study.
  • In community screening, the model improved complication detection rates among referred individuals (PPV=74%).

Conclusions:

  • A scalable, blood-based machine learning approach can effectively identify individuals at high risk for high myopia complications.
  • This method supports opportunistic screening in primary care and community settings, enabling earlier ophthalmic referral and potentially preventing vision loss.