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Heart rate variability (HRV) analysis using DSP for the detection of myocardial infarction

机译:使用DSP进行心肌梗死的心率变异性(HRV)分析

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Spectral analysis of heart rate fluctuations are commonly used as quantitative and non-invasive techniques for the study of short-term cardiovascular control functions. Such fluctuations contain key information relating to sympathetic and parasympathetic activity within the cardiovascular control system. This employs ECG complexes to determine the R-wave occurrences and IBI interval lengths. It has been shown that the variations in the interbeat interval time series show key frequency-specific properties. This work demonstrates high precision algorithms (Matlab and MikroC algorithms) and a state of the art “interpolation process”, to accurately detect R-points and translate them into uniformly sampled signals. Power Spectrum analysis of HRV signals has shown distinct differences between MI patients versus normal subjects. This provides the opportunity to quantify ANS imbalances, leading to distinct classification of Myocardial infracted patients from normal subjects. For real time implementation, a dsPIC microcontroller was programmed using the “MikroC” software.
机译:心率波动的光谱分析通常用作用于短期心血管控制功能的定量和非侵入性技术。这种波动包含与心血管控制系统内的交感神经和副交感神经活动有关的关键信息。这采用ECG复合物来确定R波出现和IBI间隔长度。已经表明,界面间隔时间序列的变化显示了关键频率特定的属性。这项工作演示了高精度算法(MATLAB和MIKROC算法)和最先进的“插值过程”,以精确地检测R点并将其转换为均匀采样的信号。 HRV信号的功率谱分析显示了MI患者与正常受试者之间的明显差异。这提供了量化ans失衡的机会,导致来自正常受试者的心肌梗死患者的不同分类。对于实时实现,使用“Mikroc”软件进行编程DSPIC微控制器。

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