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Quantifying abnormal QRS peaks using a novel time-domain peak detection algorithm: Application in patients with cardiomyopathy at risk of sudden death

机译:使用新型时域峰值检测算法对QRS异常峰进行定量:在有猝死危险的心肌病患者中的应用

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Abnormal components in the QRS complex on the surface electrocardiogram have been used to predict sudden cardiac death in patients with heart disease. We propose a novel method to automate detection of abnormal peaks within the QRS complex. The approach involves identification of such peaks from consecutive unfiltered 10-beat QRS averages. A simulation using synthetic QRS peaks is conducted to assess the methods robustness to noise. The performance of the method is tested using high-resolution precordial lead electrocardiograms recorded from normal subjects and patients with cardiomyopathy. The 10-beat average performance is compared to a 100-beat average, as is commonly used in other state-of-the-art QRS component algorithms, and shown to be more sensitive in detecting abnormal QRS peaks. The clinical performance is tested amongst the cardiomyopathy patients and the method is shown to discriminate those at risk of sudden cardiac death with high sensitivity and specificity.
机译:表面心心电图QRS复合物中的异常组分已被用于预测心脏病患者的心脏病猝死。我们提出了一种自动检测QRS复合物内异常峰的新方法。该方法涉及从连续未过滤的10-Beat QRS平均值识别这种峰。使用合成QRS峰值进行模拟,以评估方法对噪声的鲁棒性。使用从正常受试者和心肌病的患者记录的高分辨率前铅通心图来测试该方法的性能。将10拍平均性能与100次平均值进行比较,通常用于其他最先进的QRS组件算法,并且在检测异常QRS峰值时显示在更敏感。在心肌病变患者中测试了临床表现,并且该方法被证明是以高灵敏度和特异性的突然心脏死亡风险区分那些。

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