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Respiration Extraction from Single-Channel ECG using Signal-Processing Methods and Deep Learning

机译:使用信号处理方法和深度学习从单通道心电图提取呼吸

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The measured bio-potential on the surface of the body can give most of the information on the health status of an individual. Sensors that measure the ECG potential difference on the body surface could also provide information on other vital functions indirectly, like respiration, by a customized analysis of the ECG signal. Respiration is one of the most characteristic vital signs and can reflect the status of a patient or the progression of an illness. In this paper, we utilize signal-processing and deep learning methods for the extraction of the respiratory signal from the differential surface potential of a single-channel ECG. From signal processing, we investigate feature-based and filter-based methods, while from deep learning, an encoder-decoder architecture. Simultaneous measurements of a single-channel ECG and respiration have been obtained from 61 subjects before and after cardiac intervention in several positions of the body. We also investigate the power of the methods for respiration extraction depending on the period (pre-/post-operation) and the position of the body when the signal is obtained. The results show that the deep learning approach performs better than the filter-based methods but worse than the feature-based. Moreover, we conclude that different body positions do not influence respiration extraction significantly before and after the operation.
机译:在人体表面测得的生物电势可以提供有关个人健康状况的大多数信息。通过对ECG信号进行定制分析,可以测量人体表面ECG电位差的传感器也可以间接提供其他重要功能的信息,例如呼吸。呼吸是最典型的生命体征之一,可以反映患者的状况或疾病的进展。在本文中,我们利用信号处理和深度学习方法从单通道ECG的不同表面电位中提取呼吸信号。从信号处理中,我们研究基于特征和基于滤波器的方法,而从深度学习中,我们研究编码器-解码器体系结构。从61位受试者在心脏多个部位进行心脏干预之前和之后,可以同时测量单通道ECG和呼吸。我们还根据获取信号的周期(术前/术后)和身体位置来研究呼吸提取方法的功能。结果表明,深度学习方法的性能优于基于过滤器的方法,但比基于特征的方法要差。此外,我们得出的结论是,手术前后,不同的身体姿势不会显着影响呼吸的抽出。

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