Automated interpretation of systolic and diastolic function on the echocardiogram: a multicohort study

Jasper Tromp1, Paul J Seekings2, Chung-Lieh Hung3

  • 1National Heart Centre Singapore, Singapore; Duke-NUS Medical School, Singapore; Saw Swee Hock School of Public Health, National University of Singapore & National University Health System, Singapore.

Insights

A new deep learning workflow automates echocardiogram analysis, classifying and segmenting cardiac function with high accuracy. This AI tool offers a faster, more consistent approach to diagnosing heart failure globally.

Area of Science:

  • Cardiology
  • Artificial Intelligence
  • Medical Imaging

Background:

  • Echocardiography is crucial for diagnosing heart failure but manual interpretation is time-consuming and prone to error.
  • Automated analysis of echocardiograms can address limitations of manual interpretation.
  • Deep learning offers a potential solution for efficient and accurate echocardiogram analysis.

Purpose of the Study:

  • To develop and validate a fully automated deep learning workflow for echocardiogram analysis.
  • To classify, segment, and annotate 2D videos and Doppler modalities in echocardiograms.
  • To assess the accuracy and reliability of the automated workflow compared to manual measurements.

Main Methods:

  • Developed a deep learning workflow trained on 1145 echocardiograms (ATTRaCT dataset).
  • Validated the workflow on internal (406 echocardiograms) and external datasets (1029–31,241 echocardiograms) including EchoNet-Dynamic.
  • Performed independent prospective assessment with expert sonographer comparisons.

Main Results:

  • Achieved high accuracies (0.91–0.99) for classification and high Dice similarity coefficients (>93%) for segmentation.
  • Demonstrated good agreement with manual measurements for left ventricular volumes, ejection fraction, and E/e' ratio.
  • Reliably classified systolic and diastolic dysfunction with high AUC values (0.90–0.92) and showed less variance than human experts.

Conclusions:

  • Deep learning algorithms can automatically annotate echocardiograms with accuracy comparable to expert sonographers.
  • The automated workflow has the potential to improve access, quality, and reduce costs in heart failure diagnosis and management worldwide.
Abstract

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