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Unveiling the Biometric Potential of Finger-Based ECG Signals

机译:揭示基于手指的ECG信号的生物识别潜能

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摘要

The ECG signal has been shown to contain relevant information for human identification. Even though results validate the potential of these signals, data acquisition methods and apparatus explored so far compromise user acceptability, requiring the acquisition of ECG at the chest. In this paper, we propose a finger-based ECG biometric system, that uses signals collected at the fingers, through a minimally intrusive 1-lead ECG setup recurring to Ag/AgCl electrodes without gel as interface with the skin. The collected signal is significantly more noisy than the ECG acquired at the chest, motivating the application of feature extraction and signal processing techniques to the problem. Time domain ECG signal processing is performed, which comprises the usual steps of filtering, peak detection, heartbeat waveform segmentation, and amplitude normalization, plus an additional step of time normalization. Through a simple minimum distance criterion between the test patterns and the enrollment database, results have revealed this to be a promising technique for biometric applications.
机译:已经显示出ECG信号包含有关人类识别的相关信息。尽管结果验证了这些信号的潜力,但迄今为止探索的数据采集方法和设备损害了用户的可接受性,需要在胸部采集ECG。在本文中,我们提出了一种基于手指的ECG生物特征识别系统,该系统使用通过在Ag / AgCl电极上反复出现的最小干扰性1导联ECG设置(在没有凝胶作为与皮肤的界面的情况下),利用手指收集的信号。所采集的信号比在胸部获取的ECG的噪声明显更多,从而激发了特征提取和信号处理技术在该问题上的应用。执行时域ECG信号处理,包括滤波,峰值检测,心跳波形分段和幅度归一化的常规步骤,以及时间归一化的附加步骤。通过测试模式和注册数据库之间的简单最小距离标准,结果表明这是一种用于生物识别应用的有前途的技术。

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