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Artificial intelligence in coronary artery calcium score: rationale, different approaches, and outcomes

Gennari, Antonio G; Rossi, Alexia; De Cecco, Carlo N; van Assen, Marly; Sartoretti, Thomas; Giannopoulos, Andreas A; Schwyzer, Moritz; Huellner, Martin W; Messerli, Michael (2024). Artificial intelligence in coronary artery calcium score: rationale, different approaches, and outcomes. International Journal of Cardiovascular Imaging, 40(5):951-966.

Abstract

Almost 35 years after its introduction, coronary artery calcium score (CACS) not only survived technological advances but became one of the cornerstones of contemporary cardiovascular imaging. Its simplicity and quantitative nature established it as one of the most robust approaches for atherosclerotic cardiovascular disease risk stratification in primary prevention and a powerful tool to guide therapeutic choices. Groundbreaking advances in computational models and computer power translated into a surge of artificial intelligence (AI)-based approaches directly or indirectly linked to CACS analysis. This review aims to provide essential knowledge on the AI-based techniques currently applied to CACS, setting the stage for a holistic analysis of the use of these techniques in coronary artery calcium imaging. While the focus of the review will be detailing the evidence, strengths, and limitations of end-to-end CACS algorithms in electrocardiography-gated and non-gated scans, the current role of deep-learning image reconstructions, segmentation techniques, and combined applications such as simultaneous coronary artery calcium and pulmonary nodule segmentation, will also be discussed.

Additional indexing

Item Type:Journal Article, refereed, further contribution
Communities & Collections:04 Faculty of Medicine > University Hospital Zurich > Clinic for Nuclear Medicine
Dewey Decimal Classification:610 Medicine & health
Scopus Subject Areas:Health Sciences > Radiology, Nuclear Medicine and Imaging
Health Sciences > Cardiology and Cardiovascular Medicine
Language:English
Date:May 2024
Deposited On:03 Dec 2024 10:06
Last Modified:30 Apr 2025 01:36
Publisher:Springer
ISSN:1569-5794
OA Status:Hybrid
Free access at:Publisher DOI. An embargo period may apply.
Publisher DOI:https://doi.org/10.1007/s10554-024-03080-4
PubMed ID:38700819
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  • Language: English
  • Licence: Creative Commons: Attribution 4.0 International (CC BY 4.0)

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