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Efficient modeling of ECG waves for morphology tracking

机译:有效的ECG波建模以进行形态跟踪

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We propose a new approach to fully automatic ECG wave extraction and morphology tracking. It is based on Generalized Orthogonal Forward Regression (GOFR), which allows decomposing a one-dimensional signal into a set of appropriate parameterized functions. Two applications of GOFR to ECG modeling are presented. First, in order to delineate ECG characteristic waves, we make use of a specific function, called the Gaussian Mesa function (GMF). Secondly, we track the evolution of the T-wave morphology by introducing a Bi-Gaussian function (BGF). The approach was validated on three experimental settings; the results confirm that the combination of GOFR and of an appropriate parametric function is remarkably efficient for ECG wave modeling.
机译:我们提出了一种全自动ECG波提取和形态跟踪的新方法。它基于广义正交正向回归(GOFR),它可以将一维信号分解为一组适当的参数化函数。介绍了GOFR在ECG建模中的两种应用。首先,为了描绘ECG特征波,我们利用一种称为高斯梅萨函数(GMF)的特定函数。其次,我们通过引入Bi-Gaussian函数(BGF)跟踪T波形态的演变。该方法在三个实验设置下得到验证;结果证实,GOFR和适当的参数函数的组合对于ECG波形建模非常有效。

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