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首页> 外文期刊>International Journal of Applied Science - Research and Review >Digital Signal Processor (Tms320c6713) Based Abnormal Beat Detection from ECG Signals
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Digital Signal Processor (Tms320c6713) Based Abnormal Beat Detection from ECG Signals

机译:基于数字信号处理器(Tms320c6713)的ECG信号异常跳动检测

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In this work, arrhythmia detection and classification from ECG signals has been performed using a digital signal processor- TMS320C6713. Two of the predominant ECG arrhythmias- premature ventricular contraction (PVC) and atrial fibrillation (AF) have been addressed in this work. In order to distinguish the PVC and AF beats from normal ECG beats, algorithms based on the morphological characteristics of arrhythmias have been applied. The PVC and AF beats present in ECG signals have been classified using correlation-based algorithm, in which a PVC or AF beats are compared/correlated with a normal ECG beat. The correlation coefficient value for normal ECG beats for a particular ECG signal is above 0.9 (highly correlated) whereas for a PVC or AF beats its value is in the range of 0.09 to 0.3 (highly uncorrelated). Another algorithm, based on slope/amplitude, has been implemented for detecting the PVC beats from ECG signals. The slope/ amplitude-based algorithm detects the PVC beats with 98.94% accuracy as compared to 65.20% accuracy by correlation-based algorithm. Thus, slope/amplitude-based algorithm outperforms the correlation-based algorithm as two parameters -the slope of QRS complex and R wave amplitude- are considered for detecting the abnormal beats. This work presents a DSP processor-based system, ideal for use in real time applications, for detecting PVC and AF beats from ECG signals.
机译:在这项工作中,已经使用数字信号处理器TMS320C6713从ECG信号进行心律不齐检测和分类。这项工作已解决了两个主要的ECG心律失常-室性早搏(PVC)和房颤(AF)。为了将PVC和AF搏动与正常ECG搏动区分开,已经应用了基于心律不齐形态特征的算法。 ECG信号中存在的PVC和AF搏动已使用基于相关性的算法进行了分类,其中将PVC或AF搏动与正常ECG搏动进行了比较/关联。特定ECG信号的正常ECG搏动的相关系数值高于0.9(高度相关),而对于PVC或AF搏动,其值在0.09至0.3(高度不相关)的范围内。已经实现了另一种基于斜率/幅度的算法,用于从ECG信号中检测PVC搏动。基于斜率/幅度的算法检测PVC搏动的准确性为98.94%,而基于相关性的算法检测的准确性为65.20%。因此,基于斜率/振幅的算法优于基于相关性的算法,因为两个参数-QRS复数的斜率和R波振幅-被认为是用于检测异常心跳的参数。这项工作提出了一种基于DSP处理器的系统,非常适合实时应用,用于从ECG信号中检测PVC和AF搏动。

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