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A Real-Time QRS Detector Based on Discrete Wavelet Transform and Cubic Spline Interpolation

机译:基于离散小波变换和三次样条插值的实时QRS检测器

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QRS detection is an important step in electrocardiogram signal processing and analysis. Despite a lot of research effort, robustness and high detection accuracy still remain open problems. Here we present a real-time QRS detector, based on wavelet decomposition and spline interpolation, which is working in our portable health monitor system (PHMS). The discrete wavelet transform combined with the Cubic Spline Interpolation is used as the preprocessor. An improved dynamic weights adjusting strategy is adopted to enhance the detection robustness. Finally, peak detector and adaptive threshold detector are used to determine the R fiducial point. We tested the algorithm against the Massachusetts Institute of Technology—Beth Israel Hosptial (MIT-BIH) arrhythmia database, and achieved a sensitivity of 99.75% and positive prediction of 99.83%. Further experiments carried out in the PHMS showed the robustness and sound performance in processing real-time sampled signal despite heavy noise. Time accuracy was also taken into consideration in the test and the total root mean square error was 16.03 ms
机译:QRS检测是心电图信号处理和分析的重要步骤。尽管进行了大量研究工作,但鲁棒性和高检测精度仍然是未解决的问题。在这里,我们提出了一种基于小波分解和样条插值的实时QRS检测器,该检测器正在便携式健康监测系统(PHMS)中运行。离散小波变换与三次样条插值相结合用作预处理器。采用改进的动态权重调整策略来增强检测的鲁棒性。最后,峰值检测器和自适应阈值检测器用于确定R基准点。我们针对麻省理工学院—贝斯以色列医院(MIT-BIH)心律失常数据库测试了该算法,并获得了99.75%的敏感性和99.83%的阳性预测。尽管噪声很大,但在PHMS中进行的进一步实验显示了在处理实时采样信号时的鲁棒性和声音性能。测试中还考虑了时间精度,总的均方根误差为16.03 ms

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