Use of a Clinical Electrocardiographic Database to Enhance Atrial Fibrillation/Atrial Flutter Identification

Hongwei Liu1,2, Reid Collins1, Robert J H Miller1

  • 1Libin Cardiovascular InstituteCumming School of MedicineUniversity of Calgary Calgary AB Canada.

Insights

Linking electrocardiogram (ECG) data from the Marquette Universal System for Electrocardiography (MUSE) to administrative data significantly improves the detection of atrial fibrillation/atrial flutter (AF/AFL). This enhanced approach identifies more cases than administrative data alone.

Area of Science:

  • Cardiology
  • Medical Informatics
  • Public Health

Background:

  • Administrative data possess limited sensitivity for identifying atrial fibrillation/atrial flutter (AF/AFL) cases.
  • Integrating clinical electrocardiogram (ECG) data may improve the diagnostic yield for AF/AFL detection.

Purpose of the Study:

  • To evaluate the diagnostic yield of AF/AFL case finding by linking administrative data with ECG interpretations from the Marquette Universal System for Electrocardiography (MUSE) repository.
  • To assess the incremental diagnostic value of incorporating ECG data into existing administrative data-based algorithms for AF/AFL identification.

Main Methods:

  • Retrieved 369 ECGs from the MUSE repository for validation, comparing MUSE coding definitions against a blinded, duplicate review reference standard.
  • Calculated agreement (Cohen κ), sensitivity, and specificity for various MUSE coding definitions.
  • Assessed the incremental diagnostic yield by linking clinical registries, administrative data, and the MUSE repository (n=11,662) for preexisting and incident AF/AFL.

Main Results:

  • The agreement between MUSE diagnosis and reference comparison varied (Cohen κ: 0.57–0.75), with sensitivity ranging from 60.6% to 79.1% and specificity from 93.2% to 98.0%.
  • A coding definition prioritizing AF/AFL in the first three ECG statements achieved the highest sensitivity (79.1%) with minimal specificity loss (94.5%).
  • Incorporating ECG data increased the diagnostic yield of preexisting AF/AFL by 14.5% and incident AF/AFL by 7.5%–16.1% compared to administrative data alone.

Conclusions:

  • Routine ECG interpretation using MUSE coding demonstrates high specificity and moderate sensitivity for AF/AFL detection.
  • Inclusion of MUSE ECG data in case identification algorithms significantly enhances the detection of AF/AFL cases missed by administrative data alone.

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