Integrating ECG and PCG Signals through a Dual-Modal ViT for Coronary Artery Disease Detection

Insights

A new AI model, CAD-ViT, effectively screens for coronary artery disease (CAD) using electrocardiogram (ECG) and phonocardiogram (PCG) signals. This non-invasive method shows high accuracy, improving early detection of this leading cause of death.

Area of Science:

  • Biomedical Engineering
  • Artificial Intelligence in Medicine
  • Cardiology

Background:

  • Cardiovascular disease (CVD), particularly coronary artery disease (CAD), is a major global health concern and leading cause of mortality.
  • Current CAD screening methods often lack accuracy, non-invasiveness, or cost-effectiveness, highlighting the need for improved diagnostic tools.

Purpose of the Study:

  • To develop and evaluate a novel, non-invasive classification framework for accurate coronary artery disease (CAD) detection.
  • To integrate electrocardiogram (ECG) and phonocardiogram (PCG) signals using an advanced AI model for enhanced diagnostic performance.

Main Methods:

  • A Vision Transformer-based framework, Co-Attention Dual-Modal ViT (CAD-ViT), was designed to process both ECG and PCG signals.
  • Key innovations include a Co-Attention mechanism for cross-modal feature interaction and a Dynamic Weighted Fusion (DWF) module for adaptive signal integration.
  • The model was validated on a private clinical dataset and two public datasets.

Main Results:

  • CAD-ViT achieved high performance on a private dataset, with an accuracy of 97.08%, precision of 97.18%, specificity of 98.52%, F1-score of 97.04, and recall of 96.94%.
  • Validation on public datasets confirmed the model's robustness and generalization capabilities in CAD detection.
  • The co-attention and dynamic fusion mechanisms effectively leveraged complementary information from ECG and PCG signals.

Conclusions:

  • The proposed CAD-ViT framework demonstrates significant potential for accurate and non-invasive screening of coronary artery disease (CAD).
  • Multimodal signal integration using advanced AI techniques offers a promising avenue for improving cardiovascular disease diagnostics.
  • The model's high performance suggests feasibility for practical clinical deployment in CAD screening.

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