Automated beat-wise arrhythmia diagnosis using modified U-net on extended electrocardiographic recordings with

Shu Lih Oh1, Eddie Y K Ng2, Ru San Tan3

  • 1Department of Electronics and Computer Engineering, Ngee Ann Polytechnic, Singapore.

Insights

This study introduces an automated system for diagnosing arrhythmias from ECG signals. The novel U-net model accurately identifies various abnormal heart rhythms, aiding timely clinical intervention.

Area of Science:

  • Cardiology
  • Biomedical Engineering
  • Artificial Intelligence in Medicine

Background:

  • Cardiac conduction system abnormalities can cause life-threatening arrhythmias, often presenting as subtle ECG changes.
  • Manual ECG analysis for arrhythmia diagnosis is challenging and time-consuming for clinicians.
  • Early detection and intervention are crucial for managing arrhythmia complications.

Purpose of the Study:

  • To develop an automated computer-aided diagnostic (CAD) system for rapid arrhythmia diagnosis.
  • To utilize an autoencoder-based approach for classifying normal sinus beats and specific arrhythmias.
  • To aid clinicians in providing timely and appropriate patient interventions.

Main Methods:

  • A modified U-net autoencoder model was developed for beat-wise analysis of ECG signals.
  • The model processed heterogeneously segmented ECGs of variable lengths from the MIT-BIH arrhythmia database.
  • A ten-fold cross-validation strategy was employed for model evaluation.

Main Results:

  • The system achieved high classification accuracy of 97.32% for diagnosing cardiac conditions.
  • R peak detection accuracy reached 99.3% using the developed model.
  • The model demonstrated self-learning capabilities, generating class activation maps that reflect cardiac conditions.

Conclusions:

  • The developed automated CAD system effectively screens ECGs for arrhythmias.
  • The U-net based autoencoder shows promise for accurate and efficient arrhythmia diagnosis.
  • This technology can potentially improve patient outcomes through earlier intervention.

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