2022
DOI: 10.3390/brainsci12020234
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cVEP Training Data Validation—Towards Optimal Training Set Composition from Multi-Day Data

Abstract: This paper investigates the effects of the repetitive block-wise training process on the classification accuracy for a code-modulated visual evoked potentials (cVEP)-based brain–computer interface (BCI). The cVEP-based BCIs are popular thanks to their autocorrelation feature. The cVEP-based stimuli are generated by a specific code pattern, usually the m-sequence, which is phase-shifted between the individual targets. Typically, the cVEP classification requires a subject-specific template (individually created … Show more

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Cited by 4 publications
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References 33 publications
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