Coronary artery disease diagnosis based on exercise electrocardiogram indexes from repolarisation, depolarisation and
1Communications Technology Group, Aragón Institute of Engineering Research (13A), University of Zaragoza, Spain. rbailon@posta.unizar.es
Insights
Heart rate variability (HRV) indexes, particularly very high-frequency power, offer superior accuracy for diagnosing coronary artery disease (CAD) via exercise electrocardiogram (ECG) tests compared to traditional methods.
Area of Science:
- Cardiology
- Biomedical Engineering
- Medical Diagnostics
Background:
- Traditional ST depression criterion in exercise electrocardiogram (ECG) analysis has limitations for diagnosing coronary artery disease (CAD).
- Novel ECG indexes, including repolarization, depolarization, and heart rate variability (HRV) measures, have emerged to enhance diagnostic accuracy.
Purpose of the Study:
- To identify the most effective exercise ECG indexes for diagnosing coronary artery disease (CAD).
- To develop an automated method for estimating ECG indexes from noisy stress test data.
Main Methods:
- Developed a three-stage automated method for estimating ECG indexes: preprocessing (QRS detection, filtering, averaging), post-processing (noise variance-based beat rejection), and measurement.
- Applied multivariate discriminant analysis to classify patients into ischemic (positive coronary angiography) and low-risk groups.
- Evaluated repolarization, depolarization, and HRV indexes for their diagnostic performance.
Main Results:
- HR-corrected repolarization indexes improved sensitivity (SE) to 90% and specificity (SP) to 79% compared to classical ST depression (SE=65%, SP=66%).
- Depolarization indexes showed improved performance (SE=78%, SP=81%) over ST depression.
- HRV indexes, specifically very high-frequency power (VHF), achieved the highest diagnostic accuracy (SE=94%, SP=92%) at stress peak.
Conclusions:
- Automated estimation of ECG indexes is feasible even with noisy stress test data.
- HRV indexes, particularly VHF, demonstrate superior diagnostic capability for CAD detection during exercise ECG testing.
- These findings suggest HRV analysis can significantly enhance the accuracy of non-invasive CAD diagnosis.
Abstract:
Several indexes have been reported to improve the accuracy of exercise test electrocardiogram (ECG) analysis in the diagnosis of coronary artery disease (CAD), compared with the classical ST depression criterion. Some of them combine repolarisation measurements with heart rate (HR) information (such as the so-called ST/HR hysteresis); others are obtained from the depolarisation period (such as the Athens QRS score); finally, there are heart rate variability (HRV) indexes that account for the nervous system activity. The aim of this study was to identify the best exercise ECG indexes for CAD diagnosis. First, a method to automatically estimate repolarisation and depolarisation indexes in the presence of noise during a stress test was developed. The method is divided into three stages: first, a preprocessing step, where QRS detection, filtering and baseline beat rejection are applied to the raw ECG, prior to a weighted averaging; secondly, a post-processing step in which potentially noisy averaged beats are identified and discarded based on their noise variance; finally, the measurement step, in which ECG indexes are computed from the averaged beats. Then, a multivariate discriminant analysis was applied to classify patients referred for the exercise test into two groups: ischaemic (positive coronary angiography) and low-risk (Framingham risk index < 5%). HR-corrected repolarisation indexes improved the sensitivity (SE) and specificity (SP) of the classical exercise test (SE = 90%, SP = 79% against SE = 65%, SP = 66%). Depolarisation indexes also achieved an improvement over ST depression measurements (SE = 78%, SP = 81%). HRV indexes obtained the best classification results in our study population (SE = 94%, SP = 92%) by means of the very high-frequency power (VHF) (0.4-1 Hz) at stress peak.
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