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On applying multi-scale entropy to quality assessment of ECG collected via mobile phone

机译:将多尺度熵应用于手机采集的心电图质量评估

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The paper used Multi-Scale Entropy (MSE) as a non-linear metric to determine whether mobile ECG could be used for clinical purpose, namely, quality assessment of ECG. This study firstly calculated the MSE value on the artificial ECG signals (i.e., the clean artificial ECG plus Gauss white noise, high frequency noise, low frequency noise and power-line noise, respectively), and analyzed the relationship between the MSE value and the content level of noise contained in the ECG signals. Besides, the optimum scale was also obtained. Secondly, this study verified the MSE metric for real ECGs developed from the PhysioNet/Computing in Cardiology Challenge 2011 (CINC 2011) of the MIT databases, and obtained classification accuracy including True positive (TP 44.211%) and True negative (TN 97.262%). Finally, the comparison among MSE, sample entropy (SampEn) and approximate entropy (ApEn) for quality assessment of ECG was given. The results indicated that the MSE was an effective metric for quality classification of ECG, and was superior to the other entropy approaches.
机译:本文使用多尺度熵(MSE)作为非线性指标来确定移动式ECG是否可用于临床目的,即ECG的质量评估。本研究首先计算了人工ECG信号的MSE值(即干净的人工ECG加上高斯白噪声,高频噪声,低频噪声和电力线噪声),然后分析了MSE值与噪声之间的关系。 ECG信号中包含的噪声含量水平。此外,还获得了最佳规模。其次,本研究验证了从MIT数据库的PhysioNet / Computing in Cardiology Challenge 2011(CINC 2011)开发的真实ECG的MSE指标,并获得了包括真实阳性(TP 44.211%)和真实阴性(TN 97.262%)的分类准确性。 。最后,对MSE,样本熵(SampEn)和近似熵(ApEn)进行心电图质量评估进行了比较。结果表明,MSE是对ECG进行质量分类的有效指标,并且优于其他熵方法。

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