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An improved template-matching method for real-time detection of abnormal heartbeats

机译:一种实时检测异常心跳的改进模板匹配方法

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This study proposes an improved template-matching method which can automatically update the normal template heartbeats with the change in heart rate, and compare the input heartbeats with the template to detect abnormal heartbeats in real time. If an input heartbeat has a cross-correlation coefficient of less than 0.6 or a mean-square difference larger than 1.0 in comparison with the template, it is identified as abnormal. The study results show that if the normal template is not updated with the heart rate, normal heartbeats may be misjudged as abnormal when exercise changes the heart rate and heartbeat waveforms. The results also demonstrate that the proposed method can accurately identify abnormal heartbeats of ventricular fibrillation (VF) and ventricular tachycardia (VT) using ECG records 426 and 607 from the Malignant Ventricular Arrhythmia Database.
机译:这项研究提出了一种改进的模板匹配方法,该方法可以随着心率的变化自动更新正常的模板心跳,并将输入的心跳与模板进行比较,以实时检测异常心跳。如果与模板相比,输入心跳的互相关系数小于0.6或均方差大于1.0,则将其识别为异常。研究结果表明,如果正常模板未随心率更新,则当运动改变心率和心跳波形时,正常心跳可能会被误判为异常。结果还表明,使用恶性室性心律不齐数据库中的ECG记录426和607,该方法可以准确地识别出室颤(VF)和室性心动过速(VT)的异常心跳。

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