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An Improved SSVEP Based BCI System Using Frequency Domain Feature Classification

机译:改进的基于频域特征分类的基于SSVEP的BCI系统

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Brain Computer Interfacing systems provide a new communication channel for disabled people. Among the many different types of the BCI systems, the Steady State Visual Evoked Potential (SSVEP) based ones has attracted more attention due to its ease of use and signal processing. SSVEPs are usually recorded from the occipital lobe of the brain when the subject is looking at a twinkling light source. Following our previous report[10], a novel set of features along with a new high-speed classifier are introduced and used in this work. These used for SSVEP classification elicited by LED light sources separated by D = 4, 14, 24, 44 and 64 cm from each other while the LEDs’ plane was located 60 cm away from the subject's eyes. Using various SSVEP sweep lengths, the results show that the LDA and SVM classifiers outperform the other method used when applied to 0.5 and 1-second sweep lengths and to 2 and 3-second sweep lengths respectively. The Max classifier needs, however, longer sweep lengths but with a comparable Information Transfer Rate (ITR). In addition, for D=44 cm and D=64 cm the algorithm could produce the highest accuracy rate of 90% and 92% respectively compared to the other distances. Also, the performance of the proposed algorithm for D=4 cm is not acceptable (p -value<0.001). Finally, it was showed that the sweep length of 0.5 second could provide a more practical online ITR.
机译:脑计算机接口系统为残疾人提供了新的沟通渠道。在BCI系统的许多不同类型中,基于稳态视觉诱发电位(SSVEP)的系统由于其易于使用和信号处理而引起了更多关注。当受试者看着闪烁的光源时,通常从大脑枕叶记录SSVEP。在我们之前的报告[10]之后,介绍了一套新颖的功能以及一个新的高速分类器。它们用于SSVEP分类,是由LED光源彼此隔开D = 4、14、24、44和64厘米而引起的,而LED的平面位于距对象眼睛60厘米的地方。使用各种SSVEP扫描长度,结果表明,当分别应用于0.5和1秒扫描长度以及2和3秒扫描长度时,LDA和SVM分类器的性能优于其他方法。但是,Max分类器需要更长的扫描长度,但具有可比的信息传输速率(ITR)。此外,对于D = 44 cm和D = 64 cm,与其他距离相比,该算法可分别产生90%和92%的最高准确率。而且,对于D = 4cm,所提出的算法的性能是不可接受的(p值<0.001)。最后,结果表明扫描时间为0.5秒可以提供更实用的在线ITR。

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