Machine learning for coronary artery calcification detection and labeling using only native computer tomography

Asmae Mama Zair1, Assia Bouzouad Cherfa2, Yazid Cherfa2

  • 1LASICOM Laboratory, Department of Electronics, Faculty of Technology, University of Blida 1, 09000, Blida, Algeria. asmaz.zair@gmail.com.

Insights

Machine learning accurately detects and labels coronary artery calcification (CAC) from CT scans. This method precisely quantifies calcium scores per artery, aiding cardiovascular disease risk assessment.

Area of Science:

  • Cardiology
  • Medical Imaging
  • Artificial Intelligence

Background:

  • Cardiovascular disease (CVD) mortality is rising globally.
  • Coronary artery calcification (CAC) is a key indicator of CVD events.
  • Individual artery calcium scoring offers greater prognostic value than overall scores.

Purpose of the Study:

  • To develop and evaluate a machine learning approach for segmenting, labeling, and quantifying coronary artery calcification.
  • To utilize native coronary computed tomography (CT) for calcium analysis.
  • To assess the accuracy of machine learning in CAC detection and localization.

Main Methods:

  • A semi-automatic system with preprocessing to define the region of interest.
  • Two random forest classifiers for CAC detection (vs. noise) and labeling (by artery).
  • Calculation of Agatston and volume scores for individual calcifications, arteries, and the entire coronary tree.

Main Results:

  • High accuracy achieved: 99.98% for CAC detection and 100% for CAC labeling.
  • The developed method demonstrated promising results comparable to existing literature.
  • Precise quantification of calcium scores at various levels (individual, arterial, total).

Conclusions:

  • Machine learning algorithms can effectively segment, label, and quantify coronary artery calcification from native coronary CT.
  • The high accuracy of this method supports its potential for improved cardiovascular risk stratification.
  • This automated approach offers a valuable tool for clinical assessment of coronary artery disease severity.

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