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A Novel Identity Authentication Method by Modeling Photoplethysmograph Waveform

机译:光电体积描记器波形建模的新型身份认证方法

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摘要

In order to improve the reliability of identity authentication, this study explores a novel photoplethysmograph (PPG) based method. First, a morphology modeling method is proposed to quantitatively describe the PPG waveform with 12 features. The probabilistic neural network (PNN) and random forest (RF) are used to recognize which subject the PPG waveforms belong to. Then, the measured PPG signals are engaged as the experimental data to validate the proposed method. The experimental results show that the performance of RF is better than that of PNN, the average kappa coefficient is over 93%. Therefore, the proposed method has great potential in identity authentication by wearable devices.
机译:为了提高身份认证的可靠性,本研究探索了一种新颖的基于光电体积描记器(PPG)的方法。首先,提出了一种形态学建模方法来定量描述具有12个特征的PPG波形。概率神经网络(PNN)和随机森林(RF)用于识别PPG波形属于哪个主题。然后,将测得的PPG信号用作实验数据,以验证所提出的方法。实验结果表明,RF的性能优于PNN,平均kappa系数超过93%。因此,提出的方法在可穿戴设备的身份认证中具有很大的潜力。

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