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Anti-deception: reliable EEG-based biometrics with real-time capability from the neural response of face rapid serial visual presentation

机译:防欺骗:基于面部快速连续视觉呈现的神经反应,具有实时功能的可靠的基于EEG的生物识别技术

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The electroencephalogram (EEG) signal represents a subject’s specific brain activity patterns and is considered as an ideal biometric given its superior invisibility, non-clonality, and non-coercion. In order to enhance its applicability in identity authentication, a novel EEG-based identity authentication method is proposed based on self- or non-self-face rapid serial visual presentation. In contrast to previous studies that extracted EEG features from rest state or motor imagery, the designed paradigm could obtain a distinct and stable biometric trait with a lower time cost. Channel selection was applied to select specific channels for each user to enhance system portability and improve discriminability between users and imposters. Two different imposter scenarios were designed to test system security, which demonstrate the capability of anti-deception. Fifteen users and thirty imposters participated in the experiment. The mean authentication accuracy values for the two scenarios were 91.31 and 91.61%, with 6?s time cost, which illustrated the precision and real-time capability of the system. Furthermore, in order to estimate the repeatability and stability of our paradigm, another data acquisition session is conducted for each user. Using the classification models generated from the previous sessions, a mean false rejected rate of 7.27% has been achieved, which demonstrates the robustness of our paradigm. Experimental results reveal that the proposed paradigm and methods are effective for EEG-based identity authentication.
机译:脑电图(EEG)信号代表受试者的特定大脑活动模式,并且由于其出色的隐形性,非克隆性和非强制性,被认为是理想的生物特征识别。为了增强其在身份认证中的适用性,提出了一种基于EEG的基于自我或非自我面部快速串行视觉表示的新颖身份认证方法。与以前的研究从静止状态或运动图像中提取脑电特征相反,设计的范例可以以较低的时间成本获得独特而稳定的生物特征。应用通道选择为每个用户选择特定的通道,以增强系统的可移植性并改善用户与冒名顶替者之间的可分辨性。设计了两种不同的冒名顶替者场景来测试系统安全性,这些场景演示了防欺骗的能力。 15名使用者和30名冒名顶替者参加了该实验。两种情况下的平均身份验证准确度值分别为91.31和91.61%,花费的时间为6欧元,这说明了系统的精度和实时能力。此外,为了估计范例的可重复性和稳定性,针对每个用户进行了另一个数据获取会话。使用从先前的会议生成的分类模型,已达到7.27%的平均错误拒绝率,这证明了我们范例的鲁棒性。实验结果表明,所提出的范例和方法对于基于EEG的身份认证是有效的。

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