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Hidden Markov Model-based Heartbeat Detector Using Different Transformations of ECG and ABP Signals

机译:基于Markov模型的心跳探测器使用ECG和ABP信号的不同变换

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The detection of the heartbeat from electrocardiographic (ECG) and arterial blood pressure (ABP) signals,either exploited individually or jointly, has been carried out successfully using different approaches that rangefrom the use of simple digital signal processing techniques until the use of more advanced techniques basedon machine learning. In this paper, we employed a heartbeat detector that uses two hidden Markov models(HMM) to characterize the dynamics of the presence and the absence of heartbeats in ECG and ABP signals.The HMM-based detector can exploit univariate observations (ECG or ABP signals) or bivariate observations(ECG an ABP signals jointly, in a centralized manner). Two transformations of the signals were applied asa preprocessing step: absolute value and squared functions. In this sense, six detectors based on univariateobservations and nine detectors based on bivariate observations were conceived and validated in ten recordsof the MGH/MF Waveform Database. The detection performance when the absolute value of ECG and theabsolute value of ABP are jointly exploited by the HMM produced TP = 58736, FN = 631, FP = 788,sensitivity = 98:73%, positive predictivity = 98:22%).
机译:从心电图(ECG)和动脉血压(ABP)信号中的心跳检测心跳,无论是单独还是共同利用,都使用不同的方法成功地进行了这种范围通过使用简单的数字信号处理技术,直到使用更先进的技术关于机器学习。在本文中,我们使用了一种使用两个隐马尔可夫模型的心跳探测器(HMM)以表征ECG和ABP信号中存在的存在和缺乏心跳的动态。基于HMM的探测器可以利用单变量观察(ECG或ABP信号)或双方观察(以集中方式共同发出ECG信号)。将信号的两个变换应用为预处理步骤:绝对值和平方函数。从这个意义上讲,六个基于单变量的探测器在十个记录中构思和验证了基于二元观察的观测和九个探测器MGH / MF波形数据库。 ECG和ECG的绝对值时的检测性能ABP的绝对值由HMM产生的TP = 58736,FN = 631,FP = 788,灵敏度= 98:73%,阳性预测= 98:22%)。

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