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Classification of motor imagery tasks for brain-computer interface applications by means of two equivalent dipoles analysis

机译:通过两个等效偶极子分析对脑机接口应用中的运动图像任务进行分类

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We have developed a novel approach using source analysis for classifying motor imagery tasks. Two-equivalent-dipoles analysis was proposed to aid classification of motor imagery tasks for brain-computer interface (BCI) applications. By solving the electroencephalography (EEG) inverse problem of single trial data, it is found that the source analysis approach can aid classification of motor imagination of left- or right-hand movement without training. In four human subjects, an averaged accuracy of classification of 80% was achieved. The present study suggests the merits and feasibility of applying EEG inverse solutions to BCI applications from noninvasive EEG recordings.
机译:我们使用源分析开发了一种新颖的方法来对运动图像任务进行分类。提出了两个等效偶极子分析来帮助对脑机接口(BCI)应用的运动图像任务进行分类。通过解决单个试验数据的脑电图(EEG)逆问题,发现源分析方法可以在无需训练的情况下帮助左右手运动想象的分类。在四个人类受试者中,平均分类准确率达到了80%。本研究提出了从无创性脑电图记录中将脑电图逆解应用于BCI应用的优点和可行性。

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