Artificial Intelligence Driven Prehospital ECG Interpretation for the Reduction of False Positive Emergent Cardiac

Peter O Baker1, Shifa R Karim2, Stephen W Smith1,3

  • 1Department of Emergency Medicine, University of Minnesota Medical School, Minneapolis, Minnesota.

Prehospital Emergency Care
|September 5, 2024
PubMed

Insights

Artificial intelligence (AI) significantly reduced false positive acute myocardial infarction (OMI) diagnoses compared to traditional STEMI criteria. While both methods decreased false positives, AI missed no OMI cases, unlike STEMI criteria which missed 6.

Area of Science:

  • Cardiology
  • Medical Imaging
  • Artificial Intelligence

Background:

  • Prompt primary percutaneous intervention (PPCI) improves outcomes for acute myocardial infarction (OMI).
  • Emergency medical services (EMS) often face high rates of inappropriate catheterization lab activations.
  • Artificial intelligence (AI) shows potential for enhancing electrocardiogram (ECG) interpretation.

Purpose of the Study:

  • To evaluate the efficacy of an AI algorithm in reducing false positive OMI activations.
  • To assess AI's ability to identify OMI without missing true positive cases.

Main Methods:

  • Retrospective analysis of 117 patients meeting OMI criteria.
  • ECGs interpreted using STEMI criteria, device software, and a proprietary AI algorithm (Queen of Hearts).
  • Primary outcome: OMI defined by angiography and troponin levels or wall motion abnormalities. Primary analysis: per-patient false positive rate.

Main Results:

  • AI software demonstrated the highest reduction in false positives (34%), followed by device software (22%) and STEMI criteria (27%).
  • STEMI criteria missed 6 OMI cases (5%), whereas the AI algorithm missed none (p=0.01).
  • The reduction in false positives between AI and STEMI criteria was not statistically significant (p=0.19).

Conclusions:

  • AI-driven algorithms can significantly reduce false positive OMI diagnoses in emergency medical services.
  • AI offers a promising alternative to traditional STEMI criteria, improving diagnostic accuracy by avoiding missed OMI cases.
  • Further external validation in prospective studies is recommended to confirm these findings.
Abstract

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