Multi-risk factors joint prediction model for risk prediction of retinopathy of prematurity

Shaobin Chen1, Xinyu Zhao2, Zhenquan Wu2

  • 1Faculty of Applied Sciences, Macao Polytechnic University, Gomes Street, Macao, China.

The EPMA Journal
|June 6, 2024
PubMed

Insights

Artificial intelligence (AI) combined with clinical data can predict retinopathy of prematurity (ROP) and treatment-requiring ROP (TR-ROP) in infants. This approach aids early detection and reduces unnecessary screenings, improving visual outcomes.

Area of Science:

  • Ophthalmology
  • Medical Informatics
  • Neonatology

Background:

  • Retinopathy of prematurity (ROP) is a significant cause of childhood blindness in premature infants.
  • Early identification and treatment are crucial for improving visual prognosis and preventing blindness.
  • Predictive, preventive, and personalized medicine (PPPM/3PM) frameworks emphasize early intervention strategies.

Purpose of the Study:

  • To develop an artificial intelligence (AI) algorithm integrated with clinical demographics for ROP risk prediction.
  • To create a specific risk model for identifying infants with treatment-requiring retinopathy of prematurity (TR-ROP).

Main Methods:

  • Utilized data from 22,569 infants undergoing ROP screening.
  • Trained logistic regression, decision tree, and multi-layer perceptron models using factors like birth weight (BW), gestational age (GA), gender, multiple births (MB), and mode of delivery (MD).
  • Evaluated model performance using AUC and AUCPR metrics.

Main Results:

  • For ROP prediction, BW + GA achieved the best performance (AUC: 0.8124 ± 0.0033).
  • For TR-ROP prediction, GA + BW + Gender + MD + MB demonstrated reasonable performance (AUC: 0.8328 ± 0.0088).

Conclusions:

  • AI combined with risk factors enables accurate ROP and TR-ROP risk prediction.
  • Early detection of TR-ROP can be achieved, reducing ROP examinations and infant stress.
  • This AI-driven approach offers a cost-effective strategy for predictive diagnostics and personalized ROP care.
Abstract

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