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The dominant T wave cluster and One-Class SVM based analysis of multilead ECG for classification of myocardial infarction

机译:主导T波簇和基于多种心肌分类的基于单级SVM分析心肌梗死分类

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In this paper, we propose a novel algorithm for detecting myocardial infarction based on 12-lead ECG signals. Because of the strong reaction of myocardial infarction in the ST-T segment of the ECG signals, we introduce the method of the dominant T wave to describe the repolarization of the ventricular myocardium as a whole. In order to obtain robust and meaningful diagnostic features, The ST-T segment of the 12-lead ECG signals is synthesized as the dominant T wave for overall analysis. Then, in order to select the decisive heartbeats from the ECG signals, we identify some clusters over all the unlabeled heartbeats on the feature of the dominant T wave and then the result is fed to the classifier as input feature. The public ECG dataset (PTB diagnostic database) is used to evaluate the effectiveness of the proposed method. Since the number of positive samples (myocardial infarction) and negative samples (health control) in the database is not balanced, we introduce the One-Class-SVM, which is also adapted to the practical situation. Compared with the existing supervised learning algorithms, the proposed algorithm can efficiently and automatically detect myocardial infarction and improve the performance in the sensitivity and specificity.
机译:本文提出了一种基于12引导ECG信号检测心肌梗塞的新算法。由于心肌梗死在心电图信号的ST-T区段中的强烈反应,我们介绍了显性T波的方法,以描述整个心室心肌的复极化。为了获得稳健和有意义的诊断特征,12-LIG ECG信号的ST-T区段被合成为总体分析的主要T波。然后,为了从ECG信号中选择决定性的心跳,我们在主导T波的特征上识别所有未标记的心跳,然后将结果馈送到分类器作为输入特征。公共ECG数据集(PTB诊断数据库)用于评估所提出的方法的有效性。由于数据库中的阳性样本(心肌梗死)和阴性样本(健康控制)的数量不平衡,因此我们介绍了单级SVM,这也适应了实际情况。与现有的监督学习算法相比,所提出的算法可以有效地和自动检测心肌梗死,提高灵敏度和特异性的性能。

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