Machine learning-based diagnosis and risk classification of coronary artery disease using myocardial perfusion

Mehdi Amini1, Mohamad Pursamimi2, Ghasem Hajianfar1

  • 1Division of Nuclear Medicine and Molecular Imaging, Geneva University Hospital, CH-1211, Geneva 4, Switzerland.

Scientific Reports
|September 10, 2023
PubMed

Insights

Machine learning radiomics analysis of Myocardial Perfusion Imaging (MPI) single-photon emission computed tomography (SPECT) shows promise for diagnosing coronary artery disease (CAD) risk. Models using stress imaging features achieved higher accuracy in classifying CAD risk, potentially speeding up diagnosis.

Area of Science:

  • Cardiology
  • Radiology
  • Artificial Intelligence

Background:

  • Coronary Artery Disease (CAD) diagnosis relies on interpreting Myocardial Perfusion Imaging (MPI) single-photon emission computed tomography (SPECT).
  • Manual interpretation of MPI SPECT can be labor-intensive and time-consuming.
  • Machine learning (ML) and radiomics offer potential for automated and objective analysis.

Purpose of the Study:

  • To evaluate the diagnostic performance of ML-based radiomics analysis for CAD status and risk stratification using MPI SPECT.
  • To compare the effectiveness of different radiomics feature sets (Rest, Stress, Delta, Combined) and ML algorithms.

Main Methods:

  • 395 patients with suspected CAD underwent stress-rest MPI SPECT.
  • 118 radiomics features were extracted from delineated left ventricle myocardium, combined with clinical data.
  • Classifiers were trained and tested using 80% and 20% data splits, respectively, for normal/abnormal and low/high-risk CAD classification.

Main Results:

  • Models utilizing the Stress radiomics feature set demonstrated superior performance compared to other feature sets.
  • The Stress-Boruta-Gradient Boosting model achieved the highest performance for high-risk CAD classification (AUC: 0.79).
  • Key features for CAD risk included diabetes status and texture features (dependence count non-uniformity normalized).

Conclusions:

  • ML-based radiomics analysis of MPI SPECT is a promising tool for CAD risk classification.
  • The developed models can aid in reducing the manual workload and expediting the diagnostic process for CAD.
  • Stress imaging features are particularly valuable for predicting CAD risk stratification.

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