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Distinction of ventricular fibrillation and ventricular tachycardia using cross correlation

机译:互相关区分室颤和室性心动过速

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The accurate discrimination of ventricular tachycardia (VT) from ventricular fibrillation (VF) is an important issue in automated external defibrillator (AED) and other cardiac monitoring systems. The correlation function of the ECG signal is an adequate tool for detecting irregularities or noise in signals. Therefore, methods for VF/VT discrimination based on the autocorrelation of the ECG signal and on the cross correlation of the ECG signal with different templates have been proposed. Our work is focused on the use of the cross correlation of the ECG signal with a segment of the same ECG signal, instead of using a given template. The developed algorithm has been tested on a database consisting of 179 human VF and 74 human VT records. The new algorithm classifies accurately 313 VF windows (90.2% sensitivity) and 179 VT windows (96.75% sensitivity). These results improve those obtained from other techniques, considered as a reference, for the same records database.
机译:在自动体外除颤器(AED)和其他心脏监测系统中,准确区分室性心动过速(VT)与室颤(VF)是一个重要的问题。 ECG信号的相关函数是检测信号中不规则或噪声的适当工具。因此,已经提出了基于ECG信号的自相关以及基于ECG信号与不同模板的互相关的VF / VT判别方法。我们的工作重点是将ECG信号与同一ECG信号的一段互相关,而不是使用给定的模板。该开发的算法已在由179个人VF和74个人VT记录组成的数据库中进行了测试。新算法对313个VF窗口(灵敏度为90.2%)和179个VT窗口(灵敏度为96.75%)进行了准确分类。这些结果改进了从其他技术(被视为参考)获得的相同记录数据库的结果。

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