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Developing an AI-Based Model for Lagophthalmos and Bell's Phenomenon Detection in Intensive Care Unit Patients: A
Maram Alnefaie1, Nawaf S Althobaiti2, Abdulrahman Almatrafi3
1Ophthalmology, Alhada Armed Forces Hospital, Taif, SAU.
Abstract:
Purpose To validate a newly developed artificial intelligence (AI) model as a screening tool for detecting lagophthalmos and poor Bell's phenomenon, by comparing its performance with the gold-standard examination conducted by an ophthalmologist. Design A cross-sectional observational study was conducted. External eye photographs of patients admitted to intensive care units at a secondary hospital in Taif City, Kingdom of Saudi Arabia, were analyzed by the AI model to detect lagophthalmos and assess Bell's phenomenon. Conclusions and importance The findings of this study have the potential to significantly impact healthcare by enabling the prediction of serious ocular complications through an AI-based screening model for ICU patients. The integration of AI models can improve patient screening, facilitating early preventive measures such as lid tapes and lubricants to reduce the occurrence of exposure keratopathy. If validated, this AI model could be effectively utilized by non-ophthalmologist staff, including ICU nurses, thereby promoting earlier detection of lagophthalmos and preventing prolonged corneal exposure, which is a known risk factor for exposure keratopathy.

