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Motion Artifact Cancellation of Seismocardiographic Recording From Moving Subjects

机译:运动对象的心动图记录运动伪影消除

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This paper presents a novel method of extracting seismocardiographic (SCG) data from moving adult subjects recorded via micro-electromechanical (MEMS) accelerometers. A digital signal processing system based on the normalized least mean square (NLMS) adaptive filter design is developed in MATLAB to process the signals collected from the MEMS sensor node. Standardized experiments were performed on 40 moving adult subjects. False-positives were ruled out for a more precise detection rate. The research on sliding ensemble average was also conducted to find the minimum required window size. The results indicate a detection rate of 96% and a sliding window size of 32 intervals for robust continuous monitoring, showing that adaptive filtering could be a promising technique for the cancellation of motion noise artifacts from SCG recordings in moving subjects.
机译:本文提出了一种新方法,该方法可从通过微机电(MEMS)加速度计记录的运动成年人中提取地震心动图(SCG)数据。在MATLAB中开发了基于归一化最小均方(NLMS)自适应滤波器设计的数字信号处理系统,以处理从MEMS传感器节点收集的信号。对40名运动的成年受试者进行了标准化实验。排除假阳性可以提高检测率。还进行了滑动集合平均的研究,以找到所需的最小窗口大小。结果表明检出率为96%,滑动窗口大小为32个间隔,可以进行稳定的连续监视,这表明自适应滤波可能是一种有希望的技术,可以消除运动对象中SCG记录中的运动噪声伪像。

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