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Detection of acute myocardial ischemia based on support vector machines

机译:基于支持向量机的急性心肌缺血检测

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In patients with acute myocardial ischemia, chest pains together with changes in ST/T sections of ECG signal occur before the start of myocardial infarction. In this study, in order to diagnose acute myocardial ischemia, a technique which automatically detects changes in ST/T sections of ECG is developed. For this purpose, by using ECG recordings of STAFF III database, ECG features that are critical in the detection of acute myocardial ischemia are identified. By using support vector machines (SVM) operating with linear and radial basis function (RBF) kernels, classifiers that use two and four most discriminating features of ST/T sections of ECG signal are designed. As a result of implementing the developed technique on ECG recordings of STAFF III database, obtained results over a considerable number of patients indicate that the proposed technique provides highly reliable detection of acute myocardial ischemia. Therefore, by using the developed technique, early and accurate diagnosis of acute myocardial ischemia can be performed, which can lead to a significant decrease in morbidity and mortality rates.
机译:在患有急性心肌缺血的患者中,在心肌梗塞开始之前会出现胸痛以及心电图ST / T切片的变化。在这项研究中,为了诊断急性心肌缺血,开发了一种自动检测ECG的ST / T部分变化的技术。为此,通过使用STAFF III数据库的ECG记录,可以识别对检测急性心肌缺血至关重要的ECG功能。通过使用支持线性和径向基函数(RBF)内核的支持向量机(SVM),设计了使用ECG信号的ST / T部分的两个和四个最区分特征的分类器。由于在STAFF III数据库的ECG记录上实施了开发的技术,因此在相当多的患者中获得的结果表明,所提出的技术可提供高度可靠的急性心肌缺血检测。因此,通过使用发达的技术,可以对急性心肌缺血进行早期,准确的诊断,从而可以大大降低发病率和死亡率。

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