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A switchable scheme for ECG beat classification based on independent component analysis

机译:基于独立分量分析的心电图心跳分类的可切换方案

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A switchable scheme is proposed to discriminate different types of electrocardiogram (ECG) beats based on independent component analysis (ICA). The RR-interval serves as an indicator for the scheme to select between the longer (1.0 s) and the shorter (0.556 s) data samples for the following processing. Six ECG beat types, including 13900 samples extracted from 25 records in the MIT-BIH database, are employed in this study. Three conventional statistical classifiers are employed to testify the discrimination power of this method. The result shows a promising accuracy of over 99%, with equally well recognition rates throughout all types of ECG beats. Only 27 ICA features are needed to attain this high accuracy, which is substantially smaller in quantity than that in the other methods. The results prove the capability of the proposed scheme in characterizing heart diseases based on ECG signals.
机译:提出了一种基于独立成分分析(ICA)的可区分不同类型心电图(ECG)搏动的可切换方案。 RR间隔用作该方案的指标,以在较长的(1.0 s)和较短的(0.556 s)数据样本之间进行选择,以进行后续处理。这项研究使用了六种ECG搏动类型,包括从MIT-BIH数据库的25条记录中提取的13900个样本。使用三个常规统计分类器来证明该方法的辨别力。结果表明,其有希望的准确性超过99%,并且在所有类型的ECG搏动中的识别率均相同。只需27个ICA特征即可获得这种高精度,其数量大大少于其他方法。结果证明了该方案在基于ECG信号表征心脏病方面的能力。

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