Role of Artificial Intelligence in Improving Syncope Management.

Can J Cardiol

Department of Emergency Medicine, McGill University, Montréal, Québec, Canada; Lady Davis Research Institute, Montréal, Québec, Canada; Jewish General Hospital, Montréal, Québec, Canada.

Published: October 2024

AI Article Synopsis

  • Syncope is a common issue in healthcare, causing significant costs and challenges in correctly diagnosing and managing patients due to confusion with similar symptoms and varying treatment approaches.
  • AI technologies, particularly machine learning and natural language processing, hold potential for improving syncope care by accurately distinguishing syncope from similar conditions and predicting patient outcomes effectively.
  • To fully harness AI in syncope management, healthcare systems need to ensure access to large, reliable datasets while addressing challenges like patient privacy and data security.

Article Abstract

Syncope is common in the general population and a common presenting symptom in acute care settings. Substantial costs are attributed to the care of patients with syncope. Current challenges include differentiating syncope from its mimickers, identifying serious underlying conditions that caused the syncope, and wide variations in current management. Although validated risk tools exist, especially for short-term prognosis, there is inconsistent application, and the current approach does not meet patient needs and expectations. Artificial intelligence (AI) techniques, such as machine learning methods including natural language processing, can potentially address the current challenges in syncope management. Preliminary evidence from published studies indicates that it is possible to accurately differentiate syncope from its mimickers and predict short-term prognosis and hospitalisation. More recently, AI analysis of electrocardiograms has shown promise in detection of serious structural and functional cardiac abnormalities, which has the potential to improve syncope care. Future AI studies have the potential to address current issues in syncope management. AI can automatically prognosticate risk in real time by accessing traditional and nontraditional data. However, steps to mitigate known problems such as generalisability, patient privacy, data protection, and liability will be needed. In the past AI has had limited impact due to underdeveloped analytical methods, lack of computing power, poor access to powerful computing systems, and availability of reliable high-quality data. All impediments except data have been solved. AI will live up to its promise to transform syncope care if the health care system can satisfy AI requirement of large scale, robust, accurate, and reliable data.

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Source
http://dx.doi.org/10.1016/j.cjca.2024.05.027DOI Listing

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