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On the Effectiveness of EEG Signals as a Source of Biometric Information

机译:脑电信号作为生物识别信息源的有效性。

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This paper presents a biometric person recognition system using electroencephalogram (EEG) signals as the source of identity information. Wavelet transform is used for extracting features from raw EEG signals which are then classified using a support vector machine and a knearestneighbour classifier to recognize the individuals. A number of stimuli are explored using up to 18 subjects to generate person-specific EEG patterns to explore which type of stimulus may achieve better recognition rates. A comparison between two kinds of tasks - motor movement and motor imagery - appears to indicate that imagery tasks show better and more stable performance than movement tasks. The paper also reports on the impact of the number and positioning of the electrodes on performance.
机译:本文提出了一种以脑电图(EEG)信号为身份信息源的生物特征识别系统。小波变换用于从原始EEG信号中提取特征,然后使用支持向量机和近邻分类器对它们进行分类以识别个体。探索了多达18个对象的多种刺激,以生成特定于人的EEG模式,以探索哪种刺激类型可能会获得更好的识别率。两种任务(运动和运动图像)之间的比较似乎表明,成像任务比运动任务表现出更好,更稳定的性能。本文还报告了电极数量和位置对性能的影响。

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