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Statistical approach for the detection of motionoise artifacts in Photoplethysmogram

机译:检测光电体积描记图中运动/噪声伪影的统计方法

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Motion and noise artifacts (MNA) have been a serious obstacle in realizing the potential of Photoplethysmogram (PPG) signals for real-time monitoring of vital signs. We present a statistical approach based on the computation of kurtosis and Shannon Entropy (SE) for the accurate detection of MNA in PPG data. The MNA detection algorithm was verified on multi-site PPG data collected from both laboratory and clinical settings. The accuracy of the fusion of kurtosis and SE metrics for the artifact detection was 99.0%, 94.8% and 93.3% in simultaneously recorded ear, finger and forehead PPGs obtained in a clinical setting, respectively. For laboratory PPG data recorded from a finger with contrived artifacts, the accuracy was 88.8%. It was identified that the measurements from the forehead PPG sensor contained the most artifacts followed by finger and ear. The proposed MNA algorithm can be implemented in real-time as the computation time was 0.14 seconds using Matlab®.
机译:运动和噪声伪影(MNA)在实现光电容积描记(PPG)信号实时监测生命体征的潜力方面一直是一个严重的障碍。我们提出了一种基于峰度和香农熵(SE)计算的统计方法,用于精确检测PPG数据中的MNA。 MNA检测算法在从实验室和临床环境中收集的多站点PPG数据上进行了验证。在临床环境中同时记录的耳朵,手指和额头PPG中,峰度和SE度量融合检测伪影的准确度分别为99.0%,94.8%和93.3%。对于用伪造的手指记录的实验室PPG数据,准确性为88.8%。可以确定,额头PPG传感器的测量结果包含最多的伪像,其次是手指和耳朵。由于使用Matlab®的计算时间为0.14秒,因此可以实时实现所提出的MNA算法。

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