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Heartbeat Detection Using Multidimensional Cardiac Motion Signals and Dynamic Balancing

机译:使用多维心动态信号和动态平衡的心跳检测

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Ballistocardiography (BCG) is seeing a new renaissance mainly due to access of new miniaturized and sensitive MEMS accelometers and gyroscopes that provides us a new tool for unobstrusive measurement of cardiac signals. These signal, however, suffer from high signal morphology variability and commonly signals are at least partly of low quality. A characteristic of a BCG signal is commonly a brief oscillation associated with each heartbeat which caused by the hearts mechanical movement. We developed an algorithm to detect these wavelets using an envelope enhancement filtering and subsequent dynamic balancing to alleviate the problem of high peak amplitude variability. The beat detection resulted in 0.87 % missed beats and 0.31 % false beats using the gyroY axis of the mobile phone's integrated motion sensors. Also it is shown, that if the used axis could be chosen optimally for each measurement accuracy of 0.22 % missed beats and 0.21 % false beats could be reached within the used measurements. A photoplethysmogra-phy (PPG) signal was used as a verification reference. The data set consisted 2 min recordings from 66 healthy subjects and in total 8870 beats.
机译:Ballistocardiography(BCG)主要看到了新复兴由于新的小型化和MEMS敏感accelometers和陀螺仪,其提供我们心脏信号的unobstrusive测量一个新的工具的访问。然而,这些信号遭受高信号形态变异性,并且通常信号至少部分地具有低质量。 BCG信号的特征通常是与由心脏机械运动引起的每个心跳相关的简要振荡。我们开发了一种使用包络增强滤波检测这些小波的算法,随后的动态平衡来缓解高峰幅度变异性的问题。使用手机集成运动传感器的Gyroy轴产生0.87%未错过的节拍和0.31%的假搏动。同样示出了,如果可以在每次测量精度最佳地为0.22%的测量精度最佳地选择使用的轴,并且可以在使用的测量中达到0.21%的假搏动。将光电溶血性PHY(PPG)信号用作验证参考。数据集包括来自66个健康科目的2分钟录音,共8870年。

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