作者
Ayako Ishikita, Chris McIntosh, Kate Hanneman, Myunghyun M Lee, Tiffany Liang, Gauri R Karur, S Lucy Roche, Edward Hickey, Tal Geva, David J Barron, Rachel M Wald
发表日期
2023/6
期刊
Circulation: Cardiovascular Imaging
卷号
16
期号
6
页码范围
e015205
出版商
Lippincott Williams & Wilkins
简介
Background
Existing models for prediction of major adverse cardiovascular events (MACE) after repair of tetralogy of Fallot have been limited by modest predictive capacity and limited applicability to routine clinical practice. We hypothesized that an artificial intelligence model using an array of parameters would enhance 5-year MACE prediction in adults with repaired tetralogy of Fallot.
Methods
A machine learning algorithm was applied to 2 nonoverlapping, institutional databases of adults with repaired tetralogy of Fallot: (1) for model development, a prospectively constructed clinical and cardiovascular magnetic resonance registry; (2) for model validation, a retrospective database comprised of variables extracted from the electronic health record. The MACE composite outcome included mortality, resuscitated sudden death, sustained ventricular tachycardia and heart failure. Analysis was restricted to individuals …
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