A Machine Learning Model for Detection of Coronary Artery Disease Using Noninvasive Clinical Parameters

Mohammadjavad Sayadi1,2, Vijayakumar Varadarajan3,4,5, Farahnaz Sadoughi1

  • 1Department of Health Information Management, School of Health Management and Information Sciences, Iran University of Medical Sciences, Tehran 14496-14535, Iran.

Life (Basel, Switzerland)
|November 26, 2022
PubMed

Insights

This study developed a non-invasive model for early coronary artery disease (CAD) diagnosis using machine learning and feature selection. Logistic Regression and Support Vector Machines achieved 95.45% accuracy, highlighting the importance of feature selection in medical AI.

Area of Science:

  • Cardiology
  • Medical Informatics
  • Machine Learning

Background:

  • Coronary artery disease (CAD) is a leading global cause of mortality.
  • Early diagnosis and treatment of cardiovascular disease are crucial for reducing mortality and healthcare costs.
  • Developing non-invasive diagnostic models is essential for timely patient care.

Purpose of the Study:

  • To develop a novel, non-invasive model for the early diagnosis of coronary artery disease (CAD).
  • To leverage clinical data for CAD detection, avoiding invasive procedures.
  • To evaluate the impact of feature selection on machine learning model performance for CAD prediction.

Main Methods:

  • Applied machine learning (ML) techniques to the Z-Alizadeh Sani CAD dataset.
  • Utilized Pearson correlation for feature selection, identifying the most impactful features from 54 initial variables.
  • Trained and evaluated six ML models: decision tree, deep learning, logistic regression, random forest, support vector machine (SVM), and Xgboost.

Main Results:

  • Pearson feature selection reduced the effective features for CAD diagnosis to eight.
  • Logistic Regression and SVM models demonstrated superior performance, achieving 95.45% accuracy.
  • Both models exhibited high sensitivity (95.91%), specificity (91.66%), F1 score (96.90%), and Area Under the Curve (AUC) of 0.98.

Conclusions:

  • Feature selection significantly enhances the performance of machine learning models in medical diagnostics.
  • Logistic Regression and SVM are identified as the most effective models for early CAD detection based on the selected features.
  • The findings underscore the value of optimized feature sets in building robust predictive models for medical decision support systems.

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