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Peer-reviewed veterinary case report

Classification of acute myocardial ischemia by artificial neural network using echocardiographic strain waveforms.

Journal:
Computers in biology and medicine
Year:
2008
Authors:
McMahon, Eileen M et al.
Affiliation:
Mayo Clinic College of Medicine · United States

Abstract

Echocardiographic strain waveforms are highly variable, so their interpretation is experience-dependent and subjective. We tested whether an artificial neural network (ANN) can distinguish between strain waveforms obtained at baseline and during experimentally induced acute ischemia. An open-chest model of coronary occlusion and acute ischemia was used in 14 adult pigs. Strain waveforms were obtained using a GE Vivid 7 ultrasound system. An ANN design was implemented in MATLAB, and backpropagation and "leave-one-out" processes were used to train and test it. Specificity of 86% and sensitivity of 87% suggest that ANNs could aid in diagnostic prescreening of echocardiographic strain waveforms.

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Original publication: https://pubmed.ncbi.nlm.nih.gov/18321478/