Heart murmur detection from phonocardiogram recordings: The George B. Moody PhysioNet Challenge 2022

Matthew A Reyna1, Yashar Kiarashi1, Andoni Elola2

  • 1Department of Biomedical Informatics, Emory University, Atlanta, Georgia, United States of America.

PLOS Digital Health
|September 11, 2023
PubMed

Insights

The George B. Moody PhysioNet Challenge 2022 developed algorithms to detect heart murmurs from heart sound recordings, improving accessible cardiac screening. Open-source algorithms and novel metrics enhance reproducibility and clinical relevance for resource-constrained settings.

Area of Science:

  • Biomedical Engineering
  • Cardiology
  • Artificial Intelligence in Medicine

Background:

  • Cardiac auscultation is a vital screening tool for heart murmurs but requires expert interpretation, limiting its use in resource-limited areas.
  • Phonocardiogram (PCG) recordings offer a potential alternative for remote cardiac assessment.
  • The George B. Moody PhysioNet Challenge 2022 aimed to address these limitations by fostering algorithmic solutions.

Purpose of the Study:

  • To develop and evaluate algorithmic approaches for detecting heart murmurs and abnormal cardiac function using PCG recordings.
  • To promote transparency, reproducibility, and clinical relevance through open-source code submission and novel evaluation metrics.
  • To explore the potential of AI-driven cardiac screening in underserved regions.

Main Methods:

  • Sourced 5272 PCG recordings from 1452 pediatric patients in rural Brazil.
  • Invited teams to develop and submit algorithms for murmur detection and cardiac function assessment.
  • Required submission of complete training and inference code for all algorithms.
  • Devised a novel evaluation metric incorporating screening, diagnosis, and treatment costs.

Main Results:

  • Received 779 algorithms from 87 teams, resulting in 53 functional codebases.
  • Algorithms employed diverse approaches, including traditional machine learning and deep learning.
  • Demonstrated the potential of algorithmic analysis of heart sounds for accessible diagnostic screening.

Conclusions:

  • Algorithmic interpretation of PCG recordings shows promise for expanding cardiac screening accessibility.
  • Open-source submissions and tailored evaluation metrics enhance the reliability and applicability of developed algorithms.
  • The challenge facilitated advancements in AI for cardiovascular diagnostics, particularly for resource-constrained environments.

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