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Analysis of Human Electrocardiogram for Biometric Recognition

机译:人体心电图的生物特征识别分析

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摘要

Security concerns increase as the technology for falsification advances. There are strong evidences that a difficult to falsify biometric trait, the human heartbeat, can be used for identity recognition. Existing solutions for biometric recognition from electrocardiogram (ECG) signals are based on temporal and amplitude distances between detected fiducial points. Such methods rely heavily on the accuracy of fiducial detection, which is still an open problem due to the difficulty in exact localization of wave boundaries. This paper presents a systematic analysis for human identification from ECG data. A fiducial-detection-based framework that incorporates analytic and appearance attributes is first introduced. The appearance-based approach needs detection of one fiducial point only. Further, to completely relax the detection of fiducial points, a new approach based on autocorrelation (AC) in conjunction with discrete cosine transform (DCT) is proposed. Experimentation demonstrates that the AC/DCT method produces comparable recognition accuracy with the fiducial-detection-based approach.
机译:随着伪造技术的发展,对安全的关注也增加了。有充分的证据表明,难以伪造的生物特征即人的心跳可以用于身份识别。从心电图(ECG)信号进行生物特征识别的现有解决方案基于检测到的基准点之间的时间和幅度距离。这样的方法严重依赖于基准检测的准确性,由于难以精确地确定波边界,这仍然是一个未解决的问题。本文提出了从心电图数据进行人体识别的系统分析。首先介绍了结合了分析和外观属性的基于基准检测的框架。基于外观的方法仅需要检测一个基准点。此外,为了完全放松基准点的检测,提出了一种基于自相关(AC)结合离散余弦变换(DCT)的新方法。实验表明,AC / DCT方法与基于基准检测的方法可产生相当的识别精度。

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