Classification of De novo post-operative and persistent atrial fibrillation using multi-channel ECG recordings

Hanie Moghaddasi1, Richard C Hendriks1, Alle-Jan van der Veen1

  • 1Circuits and Systems, Delft University of Technology, Delft, the Netherlands.

Insights

This study introduces a new method to distinguish between early-stage post-operative atrial fibrillation (POAF) and more severe persistent atrial fibrillation (AF). The approach uses ECG data analysis and achieves 89.07% accuracy, aiding in early AF detection and severity assessment.

Area of Science:

  • Cardiology
  • Biomedical Engineering
  • Signal Processing

Background:

  • Atrial fibrillation (AF) is a common heart arrhythmia and a frequent complication after cardiac surgery.
  • Current methods struggle to differentiate AF stages from surface ECG signals, hindering timely intervention.
  • Distinguishing early de novo post-operative AF (POAF) from persistent AF is crucial for understanding AF progression.

Purpose of the Study:

  • To develop a method for binary severity detection of AF by differentiating de novo POAF from persistent AF.
  • To investigate the electrical changes in the atrium by comparing early-stage AF with a more severe form.
  • To establish a novel approach for differentiating AF stages using multi-channel ECG data.

Main Methods:

  • Feature extraction from multi-channel ECG data, including RR intervals, vectorcardiogram grayscale images, and frequency domain analysis.
  • Application of a Random Forest classifier following feature selection using the ReliefF method.
  • Validation using 5-fold cross-validation on data from 151 patients.

Main Results:

  • Achieved 89.07% accuracy in classifying de novo POAF versus persistent AF.
  • Demonstrated that the selected features are discriminative for assessing AF severity.
  • Identified key features that highlight differences between de novo POAF and persistent AF characteristics.

Conclusions:

  • The proposed method effectively differentiates between de novo POAF and persistent AF, indicating AF severity.
  • The identified features provide insights into the distinct electrical properties of different AF stages.
  • This work represents a significant step towards automated AF severity detection and personalized patient management.

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