cs.AI updates on arXiv.org 07月15日 12:26
TolerantECG: A Foundation Model for Imperfect Electrocardiogram
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文章提出了一种名为TolerantECG的ECG信号处理模型,能抵抗噪声且能在标准12导联ECG任意子集上运行,通过对比学习和自监督学习框架实现信号表征和知识检索,在PTB-XL数据集和MIT-BIH数据库中表现出色。

arXiv:2507.09887v1 Announce Type: cross Abstract: The electrocardiogram (ECG) is an essential and effective tool for diagnosing heart diseases. However, its effectiveness can be compromised by noise or unavailability of one or more leads of the standard 12-lead recordings, resulting in diagnostic errors or uncertainty. To address these challenges, we propose TolerantECG, a foundation model for ECG signals that is robust to noise and capable of functioning with arbitrary subsets of the standard 12-lead ECG. TolerantECG training combines contrastive and self-supervised learning frameworks to jointly learn ECG signal representations alongside their corresponding knowledge-retrieval-based text report descriptions and corrupted or lead-missing signals. Comprehensive benchmarking results demonstrate that TolerantECG consistently ranks as the best or second-best performer across various ECG signal conditions and class levels in the PTB-XL dataset, and achieves the highest performance on the MIT-BIH Arrhythmia Database.

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ECG信号处理 抗噪声模型 对比学习
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