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An Automatic SSVEP Component Selection Measure for High-Performance Brain-Computer Interface

机译:高性能脑电脑接口的自动SSVEP组件选择度量

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This paper proposed an automatic steady-state visual evoked potential (SSVEP) component selection (SCS) measure for a high-performance SSVEPbased brain-computer interface (SBCI) system. First, multi-electrode raw electroencephalogram signals are spatially pre-processed using a blind source separation technique resulting in multi-source components. The SCS measure of each component is then calculated by continuous wavelet transform (CWT), and the ensemble features that contain the weighted CWT energy of individual SSVEP harmonic are extracted. Second, the SSVEP component with maximal SCS measure is considered to have the highest signal-to-noise ratio. In our SBCI system, six stimulus frequencies served as the input patterns. Offline analyses were performed, through which the common electrode locations, the time window size, and the number of harmonics were defined. Thereafter the results of our method were compared with those of others. We next carried out an online test of the SBCI for 11 subjects using eight common electrode locations, a 1.5-s time window, and the first and second harmonics. The test results showed that our method achieved an average accuracy of 95.2 % and a practical bit rate of 68.2 bits/min.
机译:本文提出了一种自动稳态视觉诱发电位(SSVEP)组件选择(SSVEP)组件选择(SSVEP)测量,用于高性能SSVEPASED脑电脑接口(SBCI)系统。首先,使用导致多源组件的盲源分离技术在空间预处理的多电极原始脑电图信号。然后通过连续小波变换(CWT)计算每个分量的SCS测量,并提取包含各个SSVEP谐波的加权CWT能量的集合特征。其次,具有最大SCS测量的SSVEP组件被认为具有最高的信噪比。在我们的SBCI系统中,六个刺激频率用作输入模式。执行离线分析,通过该分析,通过该分析,通过该分析,定义了公共电极位置,时间窗口大小和谐波的数量。此后,将我们方法的结果与其他方法进行了比较。我们接下来在使用八个公共电极位置,1.5秒的时间窗口和第一和第二次谐波进行11个受试者的SBCI的在线测试。测试结果表明,我们的方法实现了95.2%的平均精度,实际比特率为68.2位/分钟。

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