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A survey on methods and challenges in EEG based authentication

机译:基于EEG的身份验证方法和挑战调查

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EEG is the recording of electrical activities of the brain, usually along the scalp surface, which are the results of synaptic activations of the brain's neurons. In recent years, it has been shown that EEG is an appropriate signal for the biometric authentication and has important features such as resistance to spoofing attacks and impossibility to use under pressure and coercion states. In this paper, the state-of-the-art methods in EEG based authentication are reviewed. This review includes a number of aspects such as the various tasks that the user required to perform during the authentication, devices and available datasets, the preprocessing procedures and the classification methods used in the EEG biometric authentication. Both shallow and deep classification methods are reviewed in this paper. The study shows that the deep learning approaches which are used in the past few years, although still require further research, have shown great results. Moreover, the paper summarizes the works to address the open challenges of this area. The EEG authentication challenges have been discussed from a variety of points of view, including privacy, user-friendliness, attacks, and authentication requirements such as universality, permanency, uniqueness, and collectability. This paper can be used as a preliminary plan and a roadmap for researchers interested in EEG biometric.
机译:脑电图是脑部的脑部的电气活性记录,通常沿着头皮表面,这是大脑神经元的突触激活的结果。近年来,已经表明,EEG是生物认证的适当信号,并且具有重要的特征,例如抗欺骗攻击的抵抗力,并且在压力和胁迫下使用不可能使用。在本文中,综述了基于EEG的身份验证中的最先进方法。此述评包括许多方面,例如在身份验证,设备和可用数据集,预处理过程和EEG生物认证中使用的预处理过程和分类方法所需的各种任务。本文审查了浅层和深层分类方法。该研究表明,过去几年中使用的深度学习方法虽然仍需要进一步研究,但表现出了很大的结果。此外,本文总结了解决这一领域的开放挑战的作品。已经从各种角度讨论了EEG认证挑战,包括隐私,用户友好性,攻击和认证要求,例如普遍性,永久性,唯一性和可集聚性。本文可用作对脑电站生物识别感兴趣的研究人员的初步计划和路线图。

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