心房颤动
亚临床感染
无症状的
医学
心脏病学
内科学
冲程(发动机)
心律失常
心脏监护
机械工程
工程类
作者
Anthony H. Kashou,Demilade Adedinsewo,Peter A. Noseworthy
标识
DOI:10.1146/annurev-med-042420-105906
摘要
Atrial fibrillation (AF) is one of the most common cardiac arrhythmias. Implantable and wearable cardiac devices have enabled the detection of asymptomatic AF episodes-termed subclinical AF (SCAF). SCAF, the prevalence of which is likely significantly underestimated, is associated with increased cardiovascular and all-cause mortality and a significant stroke risk. Recent advances in machine learning, namely artificial intelligence-enabled ECG (AI-ECG), have enabled identification of patients at higher likelihood of SCAF. Leveraging the capabilities of AI-ECG algorithms to drive screening protocols could eventually allow for earlier detection and treatment and help reduce the burden associated with AF.
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