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Sequential beat-to-beat P and T wave delineation and waveform estimation in ECG signals: Block Gibbs sampler and marginalized particle filter

机译:心电图信号中逐拍的P和T波形描绘和波形估计:Gibbs块采样器和边缘化粒子滤波器

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摘要

For ECG interpretation, the detection and delineation of P and T waves are challenging tasks. This paper proposes sequential Bayesian methods for simultaneous detection,udthreshold-free delineation, and waveform estimation of P and T waves on a beat-to-beat basis. By contrast to state-of-the-art methods that process multiple-beat signal blocks,the proposed Bayesian methods account for beat-to-beat waveform variations by sequentially estimating the waveforms for each beat. Our methods are based on Bayesian signal models that take into account previous beats as prior information. To estimate theudunknown parameters of these Bayesian models, we first propose a block Gibbs sampler that exhibits fast convergence in spite of the strong local dependencies in the ECG signal. Then, in order to take into account all the information contained in the past rather thanudconsidering only one previous beat, a sequential Monte Carlo method is presented, with a marginalized particle filter that efficiently estimates the unknown parameters of the dynamic model. Both methods are evaluated on the annotated QT database and observed to achieve significant improvements in detection rate and delineation accuracy compared to state-of-the-art methods, thus providing promising approaches for sequential P and T wave analysis.
机译:对于ECG解释来说,P波和T波的检测和描绘是一项艰巨的任务。本文提出了连续贝叶斯方法,用于在逐个拍子的基础上同时检测,无阈值描绘和P和T波的波形估计。与处理多个拍子信号块的最新方法相比,提出的贝叶斯方法通过依次估计每个拍子的波形来解决拍子之间的波形变化。我们的方法基于贝叶斯信号模型,该模型考虑了之前的拍子作为先验信息。为了估计这些贝叶斯模型的未知参数,我们首先提出一个块Gibbs采样器,尽管ECG信号中存在强烈的局部依赖性,但该采样器仍显示出快速收敛性。然后,为了考虑过去包含的所有信息,而不是仅考虑先前的拍子,提出了一种顺序蒙特卡罗方法,该方法具有边缘化粒子滤波器,可以有效地估计动态模型的未知参数。两种方法都在带注释的QT数据库上进行了评估,并观察到与最新技术相比,在检测率和描绘精度上有显着提高,从而为连续P波和T波分析提供了有希望的方法。

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