Machine Learning and Coronary Artery Calcium Scoring

被引:25
|
作者
Lee, Heon [1 ]
Martin, Simon [2 ]
Burt, Jeremy R. [2 ]
Bagherzadeh, Pooyan Sahbaee [3 ]
Rapaka, Saikiran [4 ]
Gray, Hunter N. [2 ]
Leonard, Tyler J. [2 ]
Schwemmer, Chris [4 ]
Schoepf, U. Joseph [2 ]
机构
[1] Soonchunhyang Univ Hosp Bucheon, Dept Radiol, 170 Jomaru Ro, Bucheon 14584, South Korea
[2] Med Univ South Carolina, Dept Radiol & Radiol Sci, Div Cardiovasc Imaging, 25 Courtenay Dr, Charleston, SC 29425 USA
[3] Siemens Med Solut Inc, 40 Liberty Blvd, Malvern, PA 19355 USA
[4] Siemens Healthcare GmbH, Siemensstr 3, D-91301 Forchheim, Germany
关键词
Coronary calcium scoring; Atherosclerotic plaques; Coronary artery disease; Machine learning; Deep learning; DEEP NEURAL-NETWORKS; COMPUTED-TOMOGRAPHY; ARTIFICIAL-INTELLIGENCE; CARDIAC CT; QUANTIFICATION; CALCIFICATION; SEGMENTATION; ANGIOGRAPHY; ALGORITHM;
D O I
10.1007/s11886-020-01337-7
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Purpose of Review To summarize current artificial intelligence (AI)-based applications for coronary artery calcium scoring (CACS) and their potential clinical impact. Recent Findings Recent evolution of AI-based technologies in medical imaging has accelerated progress in CACS performed in diverse types of CT examinations, providing promising results for future clinical application in this field. CACS plays a key role in risk stratification of coronary artery disease (CAD) and patient management. Recent emergence of AI algorithms, particularly deep learning (DL)-based applications, have provided considerable progress in CACS. Many investigations have focused on the clinical role of DL models in CACS and showed excellent agreement between those algorithms and manual scoring, not only in dedicated coronary calcium CT but also in coronary CT angiography (CCTA), low-dose chest CT, and standard chest CT. Therefore, the potential of AI-based CACS may become more influential in the future.
引用
收藏
页数:6
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