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Fuzzification of the Analysis of Heart Rate Variability using ECG in Time, Frequency and Statistical Domains

机译:使用ECG及时,频率和统计畴的心率变异分析的模糊化

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The paper deals with the analysis of heart rate variability in three domains, the time domain, frequency domain and the statistical domain. Different parameters are used in each of the domains and they are given different weights based on their accuracy of detecting arrhythmias. The series of RR intervals of the ECG is used for each of the analysis techniques. The time domain parameters were the standard deviation, average standard deviation of defined segments of the RR intervals, the number of consecutive beats that differ by more than a present value and the RMS value of the standard deviation. The frequency domain analysis included four power spectrums including the FFT, Lomb Periodogram, Burg spectrum and the Yule spectrum. The statistical domain parameters included calculating the Sample entropy, Information Based Similarity Index, Modified Karhunen Loeve Transform Coefficients and viewing Poincare plots. Some of the methods are better analyzing tools as compared to others therefore they are given more weight-age in determining the nature of an RR-interval series. Based on the different weights assigned to the different methods, depending on their credibility, a score is calculated for each of the series of RR-intervals. RR-intervals that get high scores around a pre defined value are considered normal according to the Fuzzification laws.
机译:本文涉及三个域,时域,频域和统计领域的心率变异性分析。在每个域中使用不同的参数,并且基于检测心律失常的准确性给出不同的权重。 ECG的系列RR间隔用于每个分析技术。时域参数是标准偏差,RR间隔的定义段的平均标准偏差,连续节拍的数量不同,其不同的标准偏差的RM值和RMS值。频域分析包括四个功率谱,包括FFT,LONB期图,BURG谱和Yule光谱。统计域参数包括计算样本熵,基于信息的相似性指数,改进的Karhunen Loeve变换系数和观看Poincare Plots。与其他方法相比,其中一些方法是更好的分析工具,因此它们在确定RR间隔系列的性质时更具体重时代。基于分配给不同方法的不同权重,根据其可信度,针对每种RR间隔计算分数。根据模糊定义法律,在预定值周围获得高分的RR-间隔。

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