Machine learning and statistical approaches for classification of risk of coronary artery disease using plasma

Seema Singh Saharan1,2,3, Pankaj Nagar4, Kate Townsend Creasy5

  • 1Department of Statistics, University of Rajasthan, Jaipur, India. ssaharan9@gmail.com.

Biodata Mining
|April 16, 2021
PubMed

Insights

Machine learning models accurately classify Coronary Artery Disease (CAD) risk using cytokine biomarkers. Random Forest achieved a 0.99 AUROC score, outperforming k-NN, offering a faster, non-invasive diagnostic alternative.

Area of Science:

  • Biomedical Informatics
  • Cardiovascular Disease Research
  • Machine Learning in Healthcare

Background:

  • Coronary Artery Disease (CAD) is the leading cause of global mortality, responsible for 31% of deaths.
  • Current diagnostic methods like angiography are invasive, costly, and carry risks.
  • Machine Learning (ML) offers a non-invasive, rapid, and affordable alternative for early CAD detection.

Purpose of the Study:

  • To implement and compare K Nearest Neighbor (k-NN) and Random Forest ML algorithms for CAD risk classification.
  • To utilize a novel set of 35 cytokine biomarkers for predicting CAD risk.
  • To evaluate model generalizability through data balancing and k-fold cross-validation.

Main Methods:

  • Development of two ML classifiers: k-NN and Random Forest.
  • Feature selection based on 35 indicative cytokine biomarkers.
  • Model performance evaluation using the Area Under the Receiver Operating Characteristic Curve (AUROC).
  • Hyperparameter tuning via repeated k-fold cross-validation and data balancing.

Main Results:

  • Random Forest achieved the highest AUROC score of 0.99 (95% CI: .982,.999).
  • k-NN achieved an AUROC score of 0.954 (95% CI: .929,.979).
  • The Random Forest classifier demonstrated statistically significant superiority over k-NN (p < 7.481e-10).

Conclusions:

  • ML algorithms, particularly Random Forest, show high efficacy in classifying CAD risk using cytokine biomarkers.
  • These ML models can serve as effective supplements or precursors to traditional diagnostic methods.
  • Further research incorporating more cytokine biomarkers could enhance early detection and uncover new therapeutic targets for CAD.
Abstract

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