Automated Condition-Based Suppression of the CPR Artifact in ECG Data to Make a Reliable Shock Decision for AEDs

Shirin Hajeb-Mohammadalipour1, Alicia Cascella2, Matt Valentine2

  • 1Biomedical Engineering Department, University of Connecticut, Storrs, CT 06269, USA.

Insights

A new algorithm filters cardiopulmonary resuscitation (CPR) artifacts from electrocardiogram (ECG) signals, improving automated external defibrillator (AED) rhythm analysis. This enhances shockable rhythm detection, potentially increasing survival rates during resuscitation efforts.

Area of Science:

  • Biomedical Engineering
  • Signal Processing
  • Emergency Medicine

Background:

  • Cardiopulmonary resuscitation (CPR) significantly corrupts electrocardiogram (ECG) signals, hindering automated external defibrillator (AED) rhythm analysis.
  • Current AEDs often pause CPR during rhythm analysis, which can reduce patient survival rates.

Purpose of the Study:

  • To develop and validate a novel condition-based filtering algorithm for removing CPR artifacts from ECG signals.
  • To improve the accuracy of AED rhythm analysis without compromising the integrity of shockable rhythms.

Main Methods:

  • A condition-based filtering algorithm using three adaptive stop-band filters was designed based on ECG spectral characteristics.
  • The algorithm was developed using data from the PhysioNet archive and validated on a Defibtech commercial AED dataset (23,816 CPR-contaminated segments).
  • Performance was quantified using correlation coefficient, signal-to-noise ratio (SNR), and accuracy of Defibtech's shock decision algorithm.

Main Results:

  • The filtering algorithm significantly improved the correlation between artifact-free and filtered ECG signals (82% shockable, 70% non-shockable >0.7 correlation).
  • Average SNR improvement was 4.5 ± 2.5 dB.
  • Sensitivity for Ventricular Fibrillation (VF) and rapid Ventricular Tachycardia (VT) improved from 67.7% to 91.3% and 62.7% to 78%, respectively.
  • Specificity for Normal Sinus Rhythm (NSR) and other non-shockable rhythms improved from 96.2% to 96.5% and 91.5% to 92.7%, respectively.

Conclusions:

  • The proposed condition-based filtering algorithm effectively removes CPR artifacts while preserving essential dynamics of shockable rhythms.
  • This approach enhances AED rhythm analysis accuracy, offering a potential improvement in resuscitation outcomes.
  • The algorithm demonstrates significant improvements in sensitivity and specificity for critical cardiac rhythm detection during CPR.

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