论文标题

盲目的心电图恢复运营周期式的恢复

Blind ECG Restoration by Operational Cycle-GANs

论文作者

Kiranyaz, Serkan, Devecioglu, Ozer Can, Ince, Turker, Malik, Junaid, Chowdhury, Muhammad, Hamid, Tahir, Mazhar, Rashid, Khandakar, Amith, Tahir, Anas, Rahman, Tawsifur, Gabbouj, Moncef

论文摘要

对心电图(ECG)信号的持续长期监测对于早期检测心律失常等心律失常至关重要。 Holter和可穿戴的ECG传感器获得的非临床ECG记录通常会遭受严重的伪像,例如基线徘徊,信号削减,运动伪像,QRS振幅的变化,噪声和其他干扰。通常,一组此类工件出现在相同的ECG信号上,严重程度和持续时间变化,这使机器或医生非常困难地诊断出了准确的诊断。尽管许多研究尝试过ECG降解,但由于其简单而幼稚的噪声模型,它们自然无法恢复因这种伪影而损坏的实际ECG信号。在这项研究中,我们提出了一种新型的使用周期一致的生成对抗网络(Cycle-Gans)的新型ECG恢复方法,在该方法可以将信号的质量提高到临床水平ECG,而不管损坏信号的文物的类型和严重程度如何。为了进一步提高恢复性能,我们提出了使用生成神经元模型的1D操作周期gan。该方法已使用超过一百万个BEATS的中国生理信号挑战(CPSC-2020)中最大的基准心电图数据集(CPSC-2020)进行了广泛的评估。除了定量和定性评估外,一组心脏病专家进行了医学评估,以验证已恢复的ECG的质量和可用性,尤其是为了准确的心律不齐诊断。

Continuous long-term monitoring of electrocardiography (ECG) signals is crucial for the early detection of cardiac abnormalities such as arrhythmia. Non-clinical ECG recordings acquired by Holter and wearable ECG sensors often suffer from severe artifacts such as baseline wander, signal cuts, motion artifacts, variations on QRS amplitude, noise, and other interferences. Usually, a set of such artifacts occur on the same ECG signal with varying severity and duration, and this makes an accurate diagnosis by machines or medical doctors extremely difficult. Despite numerous studies that have attempted ECG denoising, they naturally fail to restore the actual ECG signal corrupted with such artifacts due to their simple and naive noise model. In this study, we propose a novel approach for blind ECG restoration using cycle-consistent generative adversarial networks (Cycle-GANs) where the quality of the signal can be improved to a clinical level ECG regardless of the type and severity of the artifacts corrupting the signal. To further boost the restoration performance, we propose 1D operational Cycle-GANs with the generative neuron model. The proposed approach has been evaluated extensively using one of the largest benchmark ECG datasets from the China Physiological Signal Challenge (CPSC-2020) with more than one million beats. Besides the quantitative and qualitative evaluations, a group of cardiologists performed medical evaluations to validate the quality and usability of the restored ECG, especially for an accurate arrhythmia diagnosis.

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