Publication | Closed Access
Classification of motor imagery tasks for brain-computer interface applications by means of two equivalent dipoles analysis
137
Citations
25
References
2005
Year
Eeg Inverse SolutionsMotor ControlMotor Imagery TasksElectroencephalographySocial SciencesEquivalent Dipoles AnalysisKinesiologyPattern RecognitionCognitive ElectrophysiologyNeurologyNeuroinformaticsBrain-computer Interface ApplicationsNeuroimagingRehabilitationMotor ImageryNeural InterfaceSource AnalysisBrain-computer InterfaceInverse ProblemComputational NeuroscienceEeg Signal ProcessingMotor SystemNeuroscienceBraincomputer InterfaceMedicine
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.
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