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Interval-valued aggregation functions based on moderate deviations applied to Motor-Imagery-Based Brain Computer Interface

2020-11-19 · Javier Fumanal-Idocin, Zdenko Takáč, Javier Fernández Jose Antonio Sanz, Harkaitz Goyena, Ching-Teng Lin, Yu-Kai Wang, Humberto Bustince

In this work we study the use of moderate deviation functions to measure similarity and dissimilarity among a set of given interval-valued data. To do so, we introduce the notion of interval-valued moderate deviation function and we study in particular those interval-valued moderate deviation functions which preserve the width of the input intervals. Then, we study how to apply these functions to construct interval-valued aggregation functions. We have applied them in the decision making phase of two Motor-Imagery Brain Computer Interface frameworks, obtaining better results than those obtained using other numerical and intervalar aggregations.

📄 PDF Abstract BibTeX arXiv:2011.09831

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Tasks

Brain Computer InterfaceDecision MakingEEG 4 classesEEG Left/Right handMotor Imagery

Methods 이 논문이 사용한 방법론

Enhanced Fusion Framework The Enhanced Fusion Framework proposes three different ideas to improve the existing MI-based BCI frameworks. Image source: [Fumanal-Idocin et…
MFF BCI MI signal Classification Framework using Fuzzy integrals. Paper: Ko, L. W., Lu, Y. C., Bustince, H., Chang, Y. C., Chang, Y., Ferandez, J., ... & Lin, C. T. (2019).…

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