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Automatic continuous ECG monitoring system for over-drug detection in Brugada Syndrome

机译:自动连续心电图监测系统可用于Brugada综合征的过量药物检测

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This paper is concerned with the automatic control of drug administration in patients suffering from Brugada Syndrome (BS). Drugs such as flecainide, procainamide, ajmaline and pilsicainide should be administrated under carefully controlled electrocardiogram (ECG) monitoring given that the treatment must be stopped if some ECG disturbing conditions appear. These conditions are, among others the development of premature ventricular contraction (PVC), atrial fibrillation (AF) and the widening of the QRS wave. The proposed system can detect these abnormalities by using a pattern recognition approach based on Hidden Markov Models (HMM) with features extracted from three scales of the Wavelet Transform (WT). Performances higher than 98% were reached regarding the classification of normal and abnormal pulses. The system was trained and tested mainly in data from the standard MIT-BIH arrhythmia database.
机译:本文涉及患有Brugada综合征(BS)的患者的药物给药自动控制。氟来卡尼,普鲁卡因酰胺,阿玛琳和比斯卡尼等药物应在精心控制的心电图(ECG)监测下给药,如果出现某些ECG干扰情况,则必须停止治疗。这些疾病包括室性早搏(PVC),房颤(AF)和QRS波增宽等。所提出的系统可以通过使用基于隐马尔可夫模型(HMM)的模式识别方法来检测这些异常,该特征具有从小波变换(WT)的三个尺度中提取的特征。在正常和异常脉冲的分类方面,性能均达到98%以上。该系统主要在标准MIT-BIH心律失常数据库中的数据中进行了培训和测试。

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