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A PCA-Based Technique for QRS Complex Estimation

机译:基于PCA的QRS复杂估计技术

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In this paper, a new method for QRS complex prediction is presented. It is based on Principal Components Analysis (PCA) and polynomial fitting techniques. QRS complexes were extracted from multilead ECG signals and were aligned very perfectly. The covariance matrix was calculated from the QRS complex data matrix of many heartbeats. Afterwards, the corresponding eigenvectors and eigenvalues were computed and the reconstruction parameters vectors were derived by expansion of every beat in terms of the first eigenvectors. Performing the first order poly-fit method on the elements of the reconstruction parameter vectors yielded certain linear functions. Thereafter, the following QRS complexes were estimated by calculating the corresponding reconstruction parameter vectors derived from these functions. The similarity, absolute error and RMS error between the original and predicted QRS complexes were measured.
机译:在本文中,提出了一种对QRS复杂预测的新方法。它基于主成分分析(PCA)和多项式拟合技术。 QRS复合物从多头ECG信号中提取,并且非常完美地对齐。协方差矩阵由许多心跳的QRS复杂数据矩阵计算。然后,计算相应的特征向量和特征值,并且通过在第一特征向量方面通过扩展每次节拍来源的重建参数载体。在重建参数向量的元件上执行第一阶多拟合方法产生了某些线性函数。此后,通过计算来自这些功能的相应的重建参数向量来估计以下QRS复合物。测量了原始和预测的QRS复合物之间的相似性,绝对误差和rms误差。

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