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ECG based biometric authentication using ensemble of features

机译:使用功能集合的基于ECG的生物特征认证

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In this work, the efficacy of various features on electrocardiogram (ECG) based biometric authentication process is thoroughly examined. In particular, the features acquired from temporal analysis, wavelet transformation, power spectral density estimation and QRS-complex detection over ECG signals are considered. These features are employed with two distinct classification algorithms, namely decision tree and Bayes network, specifically for gender, age and identity recognition problems. The biometric authentication framework is evaluated on a benchmark dataset that contains ECG records of 18 healthy people including 5 men, aged 26 to 45, and 13 women, aged 20 to 50. The results of the experimental analysis reveal that if all those features are used in combination rather than individually, better performance is attained for all classifiers in each recognition problem.
机译:在这项工作中,对基于心电图(ECG)的生物特征认证过程中各种功能的功效进行了彻底的检查。特别地,考虑了从对ECG信号的时间分析,小波变换,功率谱密度估计和QRS复杂检测中获得的特征。这些功能与两种不同的分类算法一起使用,即决策树和贝叶斯网络,专门针对性别,年龄和身份识别问题。在基准数据集上评估了生物特征认证框架,该数据集包含18位健康人的ECG记录,包括5位年龄在26至45岁的男性和13位年龄在20至50岁的女性。实验分析的结果表明,如果使用了所有这些功能,结合而不是单独结合,每个识别问题中的所有分类器都可以获得更好的性能。

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