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A novel technique for analysing beat-to-beat dynamical changes of QT-RR distribution for arrhythmia prediction

机译:一种用于分析心律失常预测的QT-RR分布逐次动态变化的新技术

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Ventricular tachycardia (VT) leading to ventricular fibrillation (VF) is the major cause of sudden cardiac death (SCD) with subjects with or without any history of cardiac disease. Prediction of the initiation of ventricular fibrillation is crucial for both successful preventive measure and effective defibrillation therapy. A lot of studies have been done based on electrocardiogram (ECG) waveform analysis for VF detection but this field still needs more perfection. Both HRV and QTV related parameters were reported to be analysed for VT/VF detection and prediction with inconsistent results in different populations. In this study, we propose a novel time domain measurement tool to detect the pattern of dynamical changes of both RR and QT intervals in subjects having sustained VT/VF episodes form VFDB and AHA database (www.physionet.org). We also analyse the same pattern in some healthy subjects from Fantasia database and compare the distribution of patterns between healthy and VT/VF subjects. Our findings showed that the distribution of QT-RR dynamics are statistically significantly different (p
机译:导致室颤(VF)的室性心动过速(VT)是患有或未患有任何心脏病史的受试者突然心源性死亡(SCD)的主要原因。对于成功的预防措施和有效的除纤颤治疗,预测心室纤颤的开始至关重要。基于心电图(ECG)波形分析的VF检测已经进行了很多研究,但该领域仍需要进一步完善。据报道,HRV和QTV的相关参数均被分析用于VT / VF的检测和预测,但在不同人群中结果不一致。在这项研究中,我们提出了一种新颖的时域测量工具,用于检测从VFDB和AHA数据库(www.physionet.org)持续出现VT / VF发作的受试者中RR和QT间隔的动态变化模式。我们还从幻想曲数据库中分析了一些健康受试者的相同模式,并比较了健康受试者与VT / VF受试者之间的模式分布。我们的发现表明,QT-RR动态分布在统计学上有显着差异(p

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