Linear and nonlinear analysis of normal and CAD-affected heart rate signals

U Rajendra Acharya1, Oliver Faust, Vinitha Sree

  • 1Department of Electronics and Communication Engineering, Ngee Ann Polytechnic, Singapore 599489, Singapore; Department of Biomedical Engineering, Faculty of Engineering, University of Malaya, 50603 Kuala Lumpur, Malaysia.

Insights

This study automated coronary artery disease (CAD) detection using heart rate (HR) analysis from electrocardiogram (ECG) signals. Nonlinear techniques revealed distinct patterns differentiating normal and CAD subjects, enabling reliable diagnosis.

Area of Science:

  • Cardiology
  • Biomedical Engineering
  • Signal Processing

Background:

  • Coronary artery disease (CAD) poses a significant risk of sudden cardiac death.
  • Manual electrocardiogram (ECG) interpretation for CAD diagnosis is challenging and prone to error.

Purpose of the Study:

  • To develop an automated method for detecting CAD using heart rate (HR) signals derived from ECG.
  • To investigate the efficacy of nonlinear analysis techniques in differentiating between normal and CAD subjects.

Main Methods:

  • Extracted heart rate (HR) signals from ECG data of normal and CAD patients.
  • Applied time domain, frequency domain, and various nonlinear techniques including Poincare plots, Recurrence Quantification Analysis (RQA), entropy measures (ApEn, SampEn), and Higher Order Spectra (HOS).

Main Results:

  • Significant variations in nonlinear features were observed between normal and CAD groups.
  • Higher RQA parameters in CAD subjects indicated increased rhythmicity and signal pattern repetition.
  • Lower entropy-based parameters (ApEn, SampEn) in CAD subjects suggested reduced signal complexity.
  • HOS parameters indicated higher frequency content in CAD signals.

Conclusions:

  • Nonlinear analysis of HR signals provides a reliable method for automated CAD detection.
  • Distinct quantitative differences in RQA, entropy, and HOS parameters can effectively distinguish CAD from normal subjects.
  • This approach offers a promising tool for early and accurate diagnosis of coronary artery disease.

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