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Combination of multiple detectors for EEG based biometric identification/authentication

机译:基于EEG的生物识别/身份验证的多个检测器的组合

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The different structures of the brain of human beings produce spontaneous electroencephalographic (EEG) records that can be used to identify subjects. This paper presents a method for biometric authorization and identification based on EEG signals. The hardware uses a simple 2-signal electrode and a reference electrode configuration. The electrodes are positioned in such a way to be as unobtrusive as possible for the tested subject. Multiple features are extracted from the EEG signals that are processed by different classifiers. The system uses all the possible combinations between classifiers and features, fusing the best results. The fused decision improves the classification performance for even a small number of observation vectors. Results were obtained from a population of 50 subjects and 20 intruders, both in authentication and identification tasks. The system obtains an Equal Error Rate (EER) of 2.4% with only a few seconds for testing. The obtained performance measures are an improvement over the results of current EEG-based systems.
机译:人类大脑的不同结构产生可用于识别受试者的自发脑电图(EEG)记录。本文提出了一种基于EEG信号的生物识别授权和识别方法。硬件使用简单的2信号电极和参考电极配置。电极以这样的方式定位,以尽可能不引人注目地进行测试。从由不同分类器处理的EEG信号中提取多个特征。系统使用分类器和功能之间的所有可能组合,融合最佳效果。融合决策可以提高少数观察向量的分类性能。结果是从50名受试者和20个入侵者的群体获得的结果,无论是在认证和识别任务中。该系统仅使用几秒钟获得2.4%的相同错误率(eer)进行测试。获得的性能措施是对基于EEG的系统结果的改进。

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