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Self-Relative Evaluation Framework for EEG-Based Biometric Systems

机译:基于EEG的生物识别系统的自相对评估框架

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摘要

In recent years, electroencephalogram (EEG) signals have been used as a biometric modality, and EEG-based biometric systems have received increasing attention. However, due to the sensitive nature of EEG signals, the extraction of identity information through processing techniques may lead to some loss in the extracted identity information. This may impact the distinctiveness between subjects in the system. In this context, we propose a new self-relative evaluation framework for EEG-based biometric systems. The proposed framework aims at selecting a more accurate identity information when the biometric system is open to the enrollment of novel subjects. The experiments were conducted on publicly available EEG datasets collected from 108 subjects in a resting state with closed eyes. The results show that the openness condition is useful for selecting more accurate identity information.
机译:近年来,脑电图(EEG)信号已被用作生物识别模态,并且基于EEG的生物识别系统已经得到了越来越长的关注。然而,由于EEG信号的敏感性,通过处理技术提取身份信息可能导致提取的身份信息中的一些损失。这可能会影响系统中受试者之间的独特性。在此背景下,我们为基于EEG的生物识别系统提出了一种新的自相对评估框架。拟议的框架旨在选择生物识别系统对新科目的登记时选择更准确的身份信息。实验是在从108个受试者中收集的公开的EEG数据集进行,闭合眼睛。结果表明,开放条件可用于选择更准确的身份信息。

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