Finding the influential clinical traits that impact on the diagnosis of heart disease using statistical and

Iffat Ara Talin1, Mahmudul Hasan Abid1, Md Al-Masrur Khan2

  • 1Electronics and Communication Engineering Discipline, Khulna University, Khulna, 9208, Bangladesh.

Scientific Reports
|November 24, 2022
PubMed

Insights

Identifying key factors for heart disease diagnosis is crucial for early detection and risk assessment. This study highlights chest pain, blood vessel count, and thalassemia as primary indicators, improving diagnostic efficiency.

Area of Science:

  • Cardiology and Medical Informatics
  • Biostatistics and Machine Learning

Background:

  • Cardiac problems represent a significant epidemic, with early diagnosis crucial for reducing mortality and morbidity.
  • Limited access to frequent medical check-ups, especially in low-income areas, necessitates efficient diagnostic tools.
  • Identifying key clinical factors for heart disease is essential for accessible risk assessment.

Purpose of the Study:

  • To determine the clinical factors contributing to heart disease using statistical techniques.
  • To validate these findings using machine learning algorithms and feature importance methods.
  • To identify a minimal set of critical features for accurate cardiac disorder diagnosis.

Main Methods:

  • Employed statistical analyses including Mann Whitney U test, Chi square test, Pearson, and Spearman correlation.
  • Utilized seven machine learning algorithms for feature importance validation.
  • Applied Borda count for model consensus and SHAP values for detailed evaluation.

Main Results:

  • Eight clinical traits were found sufficient for diagnosing cardiac disorders.
  • Chest pain, number of major blood vessels, and thalassemia were identified as the three most significant indicators.
  • Fasting blood sugar was found to have no direct impact on cardiac disease.

Conclusions:

  • A focused set of clinical traits can significantly improve heart disease diagnosis accuracy.
  • Identifying critical features aids in risk assessment, potentially reducing patient mortality and health risks.
  • This research provides valuable insights for clinical practice and public health initiatives.

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