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Analysing the Robust EEG Channel Set for Person Authentication

机译:分析用于人认证的健壮EEG通道集

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In this paper, we present the findings on the EEG channel selection and its impact on the robustness for EEG based person authentication. We test the effect of the enhancement threshold value (T_e), EEG frequency rhythms, mental task and the person identity on the selected EEG channels. Experimental validation of the work with publicly available EEG dataset, showed that the idle mental task provides the highest accuracy rates compared to other considered mental tasks. Moreover, we noticed that imaginary movement tasks provide better accuracy than actual movement tasks. Also for the frequency rhythm effect, the combined frequency rhythms increase the authentication accuracy better than using a single rhythm, so no single rhythm contains all the related identity information. Also for the T_e value, we found that the less T_e we consider, the more EEG channels to be included. Further, for the final part of this work, we tested if the selected channel are person specific. As a result, we found that EEG channel set, if selected for each person differently does enhance the authentication accuracy.
机译:在本文中,我们介绍了关于EEG通道选择的发现及其对基于EEG的人员身份验证的鲁棒性的影响。我们测试了增强阈值(T_e),EEG频率节律,心理任务和个人身份对所选EEG通道的影响。使用公开的EEG数据集对工作进行的实验验证表明,与其他考虑的脑力劳动相比,空闲的脑力劳动提供了最高的准确率。此外,我们注意到虚构的运动任务比实际的运动任务提供了更好的准确性。同样对于频率节拍效果,组合频率节拍比使用单个节奏更好地提高了认证准确性,因此没有单个节奏包含所有相关的身份信息。同样对于T_e值,我们发现我们考虑的T_e越少,包含的EEG通道就越多。此外,在本工作的最后部分,我们测试了所选渠道是否特定于个人。结果,我们发现,如果为每个人选择的EEG通道设置不同,确实可以提高身份验证的准确性。

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