Age and Changes in Extracted Features of Lagged Poincare Plot

Shahab Rezaei, S. Moharreri, N. J. Dabanloo, S. Parvaneh
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Abstract

The Poincare plot is a geometrical representation of RR time series constructed by plotting successive RR intervals on a 2D phase space. In this article, the impact of age on the shape of Poincare plot of RR intervals and extracted features for quantification of this space is considered. Fantasia database from Physionet databank is used in this paper. Two hours of ECG recording (sampling frequency: 250 Hz) for twenty young (21–34 years old) and twenty older adults (68–85 years old) were used while all subjects remained in a resting state. After extraction of RR intervals from ECG, Poincare plot with 10 different lags (1–10) were constructed for each RR series, and eleven different features were extracted for each lag. Extracted features from lagged Poincare plot were used as input to K-nearest neighbor classifier to discriminate between two groups of young and older adults. Sensitivity of 86.5%, specificity of 95.1%, and the accuracy of 91.4% was achieved in the classification.
滞后庞加莱图提取特征的年龄和变化
庞加莱图是RR时间序列的几何表示,通过在二维相空间上绘制连续的RR间隔来构建。本文考虑了年龄对RR区间庞加莱图形状的影响,以及对该空间进行量化提取的特征。本文采用了Physionet数据库中的幻想曲数据库。对20名年轻人(21-34岁)和20名老年人(68-85岁)进行2小时的心电图记录(采样频率:250 Hz),所有受试者均处于静息状态。提取心电图的RR区间后,对每个RR序列构建10个不同滞后(1-10)的庞加莱图,并对每个滞后提取11个不同的特征。从滞后的庞加莱图中提取的特征作为k近邻分类器的输入,用于区分两组年轻人和老年人。分类灵敏度为86.5%,特异度为95.1%,准确率为91.4%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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