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A Robust Beat-to-Beat Artifact Detection Algorithm for Pulse Wave

机译:一种用于脉冲波的鲁棒逐拍伪影检测算法

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摘要

With the rise of the concept of smart cities and healthcare, artificial intelligence helps people pay increasing attention to the health of themselves. People can wear a variety of wearable devices to monitor their physiological conditions. The pulse wave is a kind of physiological signal which is widely applied in the physiological monitoring system. However, the pulse wave is susceptible to artifacts, which prevents its popularization. In this work, we propose a novel beat-to-beat artifact detection algorithm, which performs pulse wave segmentation based on wavelet transform and then detects artifacts beat by beat based on the decision list. We verified our method on data acquired from different databases and compared with experts' annotations. The segmentation algorithm achieved an accuracy of 96.13. When it is applied to detect main peaks, the performance achieved an accuracy of 99.11. After the previous segmentation algorithm, the artifact detection algorithm can detect beat-to-beat pulse waves and artifacts with an accuracy of 98.11. The result indicated that the proposed method is robust for pulse waves of different patterns and could effectively detect the artifact without the complex algorithm. In summary, our proposed algorithm is capable of annotating pulse waves of various patterns and determining pulse wave quality. Since our method is developed and evaluated on the transmission-mode PPG data, it is more suitable for the devices and applications inside the hospitals instead of reflectance-mode PPG.
机译:随着智慧城市和医疗保健概念的兴起,人工智能帮助人们越来越关注自己的健康。人们可以佩戴各种可穿戴设备来监测他们的生理状况。脉搏波是一种生理信号,在生理监测系统中应用广泛。然而,脉冲波容易受到伪影的影响,这阻碍了它的普及。在这项工作中,我们提出了一种新的节拍伪影检测算法,该算法基于小波变换进行脉搏波分割,然后根据决策列表逐拍检测伪影。我们验证了从不同数据库获取的数据的方法,并与专家的注释进行了比较。分割算法的准确率达到96.13%。当它用于检测主峰时,性能达到了99.11%的准确率。经过前面的分割算法,伪影检测算法可以检测出逐拍脉搏波和伪影,准确率为98.11%。结果表明,所提方法对不同模式的脉冲波具有鲁棒性,无需复杂的算法即可有效检测伪影。综上所述,所提算法能够对各种模式的脉冲波进行标注,并确定脉冲波质量。由于我们的方法是基于透射模式PPG数据开发和评估的,因此它比反射模式PPG更适合医院内部的设备和应用。

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    Fudan Univ, Dept Elect Engn, Shanghai 200433, Peoples R China;

    Xinghua City Peoples Hosp, Dept Cardiol, Changzhou 225700, Jiangsu, Peoples R China;

    Fudan Univ, Dept Elect Engn, Shanghai 200433, Peoples R China|Shanghai Engn Res Ctr Cardiac Electrophysiol, Key Lab Med Imaging Comp & Comp Assisted Interven, Shanghai 201318, Peoples R China;

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