Why the study?
The use of deep neural networks for ECG-based AF detection on wearable devices is limited by the trade-off between model performance and complexity due to limited computing resources.
Do lightweight CNNs with parameterised hypercomplex layers maintain AF detection performance with fewer parameters compared to real-valued CNNs?
Do lightweight CNNs with parameterised hypercomplex layers maintain AF detection performance with fewer parameters compared to real-valued CNNs?
Parameterised hypercomplex neural networks can achieve comparable AF detection performance to standard CNNs while using significantly fewer parameters, facilitating deployment on wearable devices.
May enable efficient AF detection on wearables; leaves open prospective clinical validation before adoption.
Atrial fibrillation (AF) is the most common cardiac arrhythmia and associated with a high risk for serious conditions like stroke. The use of wearable devices embedded with automatic and timely AF assessment from electrocardiograms (ECGs) has shown to be promising in preventing life-threatening situations. Although deep neural networks have demonstrated superiority in model performance, their use on wearable devices is limited by the trade-off between model performance and complexity. In this work, we propose to use lightweight convolutional neural networks (CNNs) with parameterised hypercomplex (PH) layers for AF detection based on ECGs. The proposed approach trains small-scale CNNs, thus overcoming the limited computing resources on wearable devices. We show comparable performance to corresponding real-valued CNNs on two publicly available ECG datasets using significantly fewer model parameters. PH models are more flexible than other hypercomplex neural networks and can operate on any number of input ECG leads.
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Basso et al. (2023) studied this question.
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