Improvement of human identification accuracy by wavelet of peak-aligned ECG

J. B. Fernando, Koji Morikawa
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引用次数: 3

Abstract

In this paper, a novel method of human identification using electrocardiogram (ECG) is proposed. In the method, while normalizing RR interval, in addition to normalized signal where time interval of P wave, Q wave, R wave, S wave relatively to R wave is unaligned, normalized signal where time interval of those peaks is aligned is also generated. Wavelet transform is then applied to both normalized signals and feature vector is extracted from their wavelet coefficients. ECG data are collected from 10 subjects using a pair of dry electrodes which are held by two fingers. Experiment results show that adding wavelet of peak-aligned ECG improves the classification accuracy, where the maximum accuracy is 100%, 97%, and 90% for data measured in more than 20 seconds, 5 seconds, and 3 seconds respectively.
波峰对准心电小波对人体识别精度的提高
本文提出了一种利用心电图进行人体识别的新方法。该方法在对RR区间进行归一化的同时,除了产生P波、Q波、R波、S波相对于R波的时间间隔不对齐的归一化信号外,还产生这些峰的时间间隔对齐的归一化信号。然后对归一化信号进行小波变换,并从其小波系数中提取特征向量。用两根手指握住一对干电极收集10名受试者的心电图数据。实验结果表明,加入峰对心电信号的小波后,对20秒以上、5秒以上、3秒以上的数据的分类准确率分别达到100%、97%和90%。
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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