A machine learning approach for the diagnosis of obstructive sleep apnoea using oximetry, demographic and anthropometric data

Introduction: Obstructive sleep apnoea (OSA) is a serious but underdiagnosed condition. Demand for the gold standard diagnostic polysomnogram (PSG) far exceeds its availability. More efficient diagnostic methods are needed, even in tertiary settings. Machine learning (ML) models have strengths in di...

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Bibliographic Details
Main Authors: Zhou Hao Leong, Shaun Ray Han Loh, Leong Chai Leow, Thun How Ong, Song Tar Toh
Format: Article
Language:English
Published: Wolters Kluwer – Medknow Publications 2025-04-01
Series:Singapore Medical Journal
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Online Access:https://journals.lww.com/10.4103/singaporemedj.SMJ-2022-170
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