Automatic Control of Reactive Brain Computer Interfaces
This article discusses practical and theoretical aspects of real-time brain computer interface control methods based on Bayesian statistics. We investigate and improve the performance of automatic control and feedback algorithms of a reactive brain computer interface based on a visual oddball paradigm for faster statistical convergence. We introduce transfer learning using Gaussian mixture models, enabling a ready-to-use setup.
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Brain Computer InterfaceTransfer LearningSimilar Papers 제목 키워드 기반
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