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Updated: May 30, 2025

Drug-Induced Sleep Endoscopy DISE with Target Controlled Infusion TCI and Bispectral Analysis in Obstructive Sleep Apnea
Published on: December 6, 2016
Ultrasound Predicts Drug-Induced Sleep Endoscopy Findings Using Machine Learning Models
Samuel E Jones1,2, Natalie Aw3, Molly Acord3
1Department of Otorhinolaryngology, University of Maryland Medical Center, Baltimore, Maryland, U.S.A.
Objectives:
Ultrasound is a promising low-risk imaging modality that can provide objective airway measurements that may circumvent limitations of drug-induced sleep endoscopy (DISE). This study was devised to identify ultrasound-derived anatomical measurements that could accurately predict collapse pattern and location based on the VOTE criteria (VOTE: Velum, Oropharynx, Tongue, and Epiglottis).
Methods:
Ultrasonography was performed on 20 adult patients of various airway subsites while awake and sedated with concurrent endoscopy performed during drug-induced sleep. Measurements were obtained from the ultrasonographic images, and percent collapse (Pc) was estimated then graded using a standard VOTE score. Generalized Least Squares regression (GLS) was used to establish models predictive of Pc on a continuous scale, while multiple machine learning (ML) models were trained to predict each VOTE score (binary, >50% collapse) from ultrasound measurements.
Results:
Measurements of multiple ultrasonographic airway subsites demonstrated associations with endoscopic collapse using Kendall Tau correlation. The GLS models showed moderate to strong correlation between multiple ultrasound features and Pc (R2 adj 0.53-0.82) across all VOTE subsites. ML models accurately predicted binarized VOTE scores from ultrasound measurements in four out of five VOTE subsites (F1 score >0.65), while the VOTE subsite with the most accurately predicted collapse was lateral velum collapse with an F1 score of 0.93 averaged across all models.
Conclusions:
Ultrasound is a reliable imaging modality and can identify features of airway collapse during drug-induced sleep. Regression (GLS) and ML models show promise in predicting severity of collapse during DISE with analysis of airway ultrasonographic measurements.
Level Of Evidence:
3 Laryngoscope, 135:1642-1651, 2025.
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