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Cardiac arrhythmia diagnosis method using linear discriminant analysis on ECG signals

机译:心电信号线性判别分析的心律失常诊断方法

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This work describes a Linear Discriminant Analysis (LDA) method to analyze ECG signals for diagnosing cardiac arrhythmias effectively. The proposed method can accurately classify and differentiate normal (NORM) and abnormal heartbeats. Abnormal heartbeats include left bundle branch block (LBBB), right bundle branch block (RBBB), ventricular premature contractions (VPC) and atrial premature contractions (APC). ECG signal analysis comprises three main stages: (i) QRS waveform detection; (ii) qualitative features selection; and (iii) heartbeat case determination. The available ECG records in the MIT-BIH arrhythmia database are utilized to illustrate the effectiveness of the proposed method. Experimental results show that the correct diagnosis rates are 98.97percent, 91.07percent, 95.09percent, 92.63percent and 84.68percent for NORM, LBBB, RBBB, VPC and APC, respectively.
机译:这项工作描述了一种线性判别分析(LDA)方法来分析ECG信号,以有效地诊断心律不齐。所提出的方法可以准确地分类和区分正常(NORM)和异常心跳。心跳异常包括左束支传导阻滞(LBBB),右束支传导阻滞(RBBB),室性早搏(VPC)和房性早搏(APC)。 ECG信号分析包括三个主要阶段:(i)QRS波形检测; (ii)定性特征选择; (iii)确定心跳病例。 MIT-BIH心律失常数据库中可用的ECG记录用于说明所提出方法的有效性。实验结果表明,NORM,LBBB,RBBB,VPC和APC的正确诊断率分别为98.97%,91.07%,95.09%,92.63%和84.68%。

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