Uncertainty-Aware Multi-view Arrhythmia Classification from ECG

Fuente: arXiv
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Hauptverfasser: Ashhad, Mohd, Rahmani, Sana, Fayiz, Mohammed, Etemad, Ali, Hashemi, Javad
Format: Preprint
Veröffentlicht: 2025
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author Ashhad, Mohd
Rahmani, Sana
Fayiz, Mohammed
Etemad, Ali
Hashemi, Javad
author_facet Ashhad, Mohd
Rahmani, Sana
Fayiz, Mohammed
Etemad, Ali
Hashemi, Javad
contents We propose a deep neural architecture that performs uncertainty-aware multi-view classification of arrhythmia from ECG. Our method learns two different views (1D and 2D) of single-lead ECG to capture different types of information. We use a fusion technique to reduce the conflict between the different views caused by noise and artifacts in ECG data, thus incorporating uncertainty to obtain stronger final predictions. Our framework contains the following three modules (1) a time-series module to learn the morphological features from ECG; (2) an image-space learning module to learn the spatiotemporal features; and (3) the uncertainty-aware fusion module to fuse the information from the two different views. Experimental results on two real-world datasets demonstrate that our framework not only improves the performance on arrhythmia classification compared to the state-of-the-art but also shows better robustness to noise and artifacts present in ECG.
format Preprint
id arxiv_https___arxiv_org_abs_2506_06342
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Uncertainty-Aware Multi-view Arrhythmia Classification from ECG
Ashhad, Mohd
Rahmani, Sana
Fayiz, Mohammed
Etemad, Ali
Hashemi, Javad
Signal Processing
Machine Learning
We propose a deep neural architecture that performs uncertainty-aware multi-view classification of arrhythmia from ECG. Our method learns two different views (1D and 2D) of single-lead ECG to capture different types of information. We use a fusion technique to reduce the conflict between the different views caused by noise and artifacts in ECG data, thus incorporating uncertainty to obtain stronger final predictions. Our framework contains the following three modules (1) a time-series module to learn the morphological features from ECG; (2) an image-space learning module to learn the spatiotemporal features; and (3) the uncertainty-aware fusion module to fuse the information from the two different views. Experimental results on two real-world datasets demonstrate that our framework not only improves the performance on arrhythmia classification compared to the state-of-the-art but also shows better robustness to noise and artifacts present in ECG.
title Uncertainty-Aware Multi-view Arrhythmia Classification from ECG
topic Signal Processing
Machine Learning
url https://arxiv.org/abs/2506.06342