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Low-rank singular approximation based ECG signal compression in e-health applications

机译:基于低秩的奇异近似的电子健康应用中的ECG信号压缩

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In this paper, a compression technique for ECG signal using low-rank matrix approximation based on inter and intra beat correlation, is presented. Here, singular value decomposition (SVD) has been exploited to explore the low rank representation using truncation process that stores most significant data with few singular values. In this method, two dimensional (2-D) array of ECG signal is constructed using interpolation, zero padding and average period length. The presented compression is evaluated with MIT-BIH arrhythmia ECG signal using different fidelity parameters such as compression ratio (CR), percentage root-mean square difference (PRD), signal-to-noise ratio (SNR), and correlation (CC). The obtained results presented at different rank truncation are 4:1 to 34:1 compression ratio for signal 117. Overall results show that the efficiency of presented compression technique is good for data storage or transmission in telemedicine applications.
机译:本文介绍了使用基于和帧内拍拍相关性的低秩矩阵近似的ECG信号的压缩技术。这里,已经利用奇异值分解(SVD)使用截断过程探索低秩表示,该截断过程具有几个单数值的最重要数据。在该方法中,使用插值,零填充和平均周长长度构建二维(2-D)ECG信号阵列。使用不同的保真参数(例如压缩比(CR),百分比百分比平方差(PRD),信噪比(SNR)和相关(CC),用MIT-BIH心律失常ECG信号评估所提出的压缩。在不同级别截短的所得结果是信号117的4:1至34:1的压缩比。总体结果表明,所呈现的压缩技术的效率是良好的远程医疗应用中的数据存储或传输。

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