基于svm的脑机接口系统心理任务选择方法

E. Iáñez, A. Úbeda, E. Hortal, J. Azorín
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引用次数: 10

摘要

在这项工作中,提出了一项使用基于支持向量机(SVM)的分类器分析脑机接口(BCI)中心理任务的最佳组合的研究。为此,对12个不同性质的心理任务进行了分析,得出了二任务、三任务和四任务组合的分类结果。四名志愿者对这十二项任务进行记录。主要目标是找到三个以上心理任务的组合,以获得更高的可靠性,以便在未来需要使用三个以上心理控制命令的复杂应用中应用它。经过选择程序后,获得的结果显示出更高的成功率和根据心理任务的性质的重要差异,这表明使用所提出的方法可以在三个以上的心理任务之间进行足够可靠的区分。
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Mental tasks selection method for a SVM-based BCI system
In this work, a study that analyzes the best combinations of mental tasks in a Brain-Computer Interface (BCI) using a classifier based on Support Vector Machine (SVM) is presented. To that end, twelve mental tasks of different nature are analyzed and the results of the classification for the combinations of two, three and four tasks are obtained. Four volunteers performed registers of the twelve tasks. The main goal is to find the combination of more than three mental tasks that obtains the higher reliability to apply it in future complex applications that require the use of more than three mental control commands. After a selection procedure, the results obtained show higher success percentages and important differences according to the nature of the mental tasks, which suggest that it is possible to differentiate with enough reliability between more than three mental tasks using the methodology proposed.
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