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Real-time premature ventricular contractions detection based on Redundant Discrete Wavelet Transform

机译:基于冗余离散小波变换的实时室性早搏检测

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Introduction Premature Ventricular Contraction (PVC) is among the most common types of ventricular cardiac arrhythmia. However, it only poses danger if the person suffers from a heart disease, such as heart failure. Hence, this is an important factor to consider in heart disease people. This paper presents an ECG real-time analysis system for PVC detection. Methods This system is based on threshold adaptive methods and Redundant Discrete Wavelet Transform (RDWT), with a real-time approach. This analysis is based on wavelet coefficients energy for PVC detection. It is presented also a study to find the most indicated wavelet mother for ECG analysis application among the following wavelet families: Daubechies, Coiflets and Symlets. The system detection performance was validated on the MIT-BIH Arrhythmia Database. Results The best results were verified with db2 wavelet mother: the Sensitivity Se = 99.18%, Positive Predictive Value P+ = 99.15% and Specificity Sp = 99.94%, on 80.872 annotated beats, and 61.2 s processing speed for a half-hour record. Conclusion The proposed system exhibits reliable PVC detection, with real-time approach, and a simple algorithmic structure that can be implemented in many platforms.
机译:简介室性早搏(PVC)是最常见的室性心律失常类型。但是,只有在此人患有心脏病(例如心力衰竭)时,它才构成危险。因此,这是心脏病患者要考虑的重要因素。本文提出了一种用于PVC检测的ECG实时分析系统。方法该系统基于阈值自适应方法和冗余离散小波变换(RDWT),并具有实时方法。该分析基于用于PVC检测的小波系数能量。还提出了一项研究,以在以下小波家族中找到最适合用于ECG分析的小波母亲:Daubechies,Coiflets和Symlets。系统检测性能已在MIT-BIH心律失常数据库上得到验证。结果用db2小波母亲验证了最好的结果:在80.872带注释的心跳上,灵敏度Se = 99.18%,正预测值P + = 99.15%,特异性Sp = 99.94%,半小时记录的处理速度为61.2 s。结论提出的系统具有可靠的PVC检测,实时方法和简单的算法结构,可以在许多平台上实现。

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