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Dynamic time warping as a novel tool in pattern recognition of ECG changes in heart rhythm disturbances

机译:动态时代扭曲作为一种新颖的ECG变化模式识别心律紊乱的新型工具

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We present a novel method for the classification and identification of electrocardiograms (ECGs) of various heart rhythm disturbances. This is an essential step in the automatic analysis of heart rhythm disturbances. Dynamic time warping (DTW) is used for this purpose. DTW is utilized successfully in speech recognition. Wavelet analysis is used in some implantable cardioverter defibrillators currently for ECG waveform recognition and classification purpose. The simulations of time-series ECG data of various rhythm disturbances are produced. Normal sinus rhythm ECG templates are compared to the simulated rhythms by both methods. DTW analysis successfully differentiates the ECGs of various arrhythmias. Of note, DTW is able to differentiate ventricular tachycardia from supraventricular tachycardia unlike wavelet analysis. Differentiation of these two rhythm types has significant clinical implications. DTW can potentially be used for automatic pattern recognition of ECG changes representative of various rhythm disturbances.
机译:我们为各种心律节奏干扰的心电图(ECG)的分类和鉴定进行了一种新方法。这是心律紊乱自动分析的重要步骤。动态时间翘曲(DTW)用于此目的。 DTW在语音识别中成功使用。小波分析用于一些用于ECG波形识别和分类目的的一些可植入的心脏除颤器。产生各种节奏干扰的时间序列ECG数据的模拟。通过两种方法将正常的窦性心律ECG模板与模拟节奏进行比较。 DTW分析成功地区分了各种心律失常的心电图。值得注意的是,DTW能够与小波分析不同于Supraventricular的心动过速区分心室心动过速。这些两个节奏类型的分化具有显着的临床意义。 DTW可能用于自动模式识别的ECG变化,代表各种节奏障碍。

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