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An Efficient Technique for Compressing ECG Signals Using QRS Detection, Estimation, and 2D DWT Coefficients Thresholding

机译:使用QRS检测,估计和2D DWT系数压缩ECG信号的一种有效技术,阈值阈值

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摘要

This paper presents an efficient electrocardiogram (ECG) signals compression technique based on QRS detection, estimation, and 2D DWT coefficients thresholding. Firstly, the original ECG signal is preprocessed by detecting QRS complex, then the difference between the preprocessed ECG signal and the estimated QRS-complex waveform is estimated. 2D approaches utilize the fact that ECG signals generally show redundancy between adjacent beats and between adjacent samples. The error signal is cut and aligned to form a 2-D matrix, then the 2-D matrix is wavelet transformed and the resulting wavelet coefficients are segmented into groups and thresholded. There are two grouping techniques proposed to segment the DWT coefficients. The threshold level of each group of coefficients is calculated based on entropy of coefficients. The resulted thresholded DWT coefficients are coded using the coding technique given in the work by (Abo-Zahhad and Rajoub, 2002). The compression algorithm is tested for 24 different records selected from the MIT-BIH Arrhythmia Database (MIT-BIH Arrhythmia Database). The experimental results show that the proposed method achieves high compression ratio with relatively low distortion and low computational complexity in comparison with other methods.
机译:本文介绍了基于QRS检测,估计和2D DWT系数阈值阈值的高效心电图(ECG)信号压缩技术。首先,通过检测QRS复合物预处理原始ECG信号,然后估计预处理的ECG信号与估计的QRS复杂波之间的差异。 2D方法利用ECG信号通常在相邻节拍之间以及相邻样本之间显示冗余。误差信号被切割并对齐以形成2-D矩阵,然后将2-D矩阵变换为小波,并将结果的小波系数分段为组并阈值。提出了两种分组技术,以分段为DWT系数。基于系数的熵计算每组系数的阈值水平。使用由工作中给出的编码技术(Abo-Zahhad和Rajoub,2002)编码所得到的阈值DWT系数。测试压缩算法从MIT-BIH心律失常数据库(MIT-BIH心律失常数据库)中选择的24个不同的记录。实验结果表明,与其他方法相比,该方法实现了具有相对较低的变形和低计算复杂性的高压缩比。

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