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Generalized Sparse Discriminant Analysis for Event-Related Potential Classification

Peterson, Victoria et al · Elsevier · 2017

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A brain computer interface (BCI) is a system which provides direct communication between the mind of a person and the outside world by using only brain activity (EEG). The event-related potential (ERP)-based BCI problem consists of a binary pattern recognition. Linear discriminant analysis (LDA) is widely used to solve this type of classification problems, but it fails when the number of features is large relative to the number of observations. In this work we propose a penalized version of the sparse discriminant analysis (SDA), called generalized sparse discriminant analysis (GSDA), for binary classification. This method inherits both the discriminative feature selection and classification properties of SDA and it also improves SDA performance through the addition of Kullback-Leibler class discrepancy information. The GSDA method is designed to automatically select the optimal regularization parameters. Numerical experiments with two real ERP-EEG datasets show that, on one hand, GSDA outperforms standard SDA in the sense of classification performance, sparsity and required computing time, and, on the other hand, it also yields better overall performances, compared to well-known ERP classification algorithms, for single-trial ERP classification when insufficient training samples are available. Hence, GSDA constitute a potential useful method for reducing the calibration times in ERP-based BCI systems. Fil: Peterson, Victoria. Consejo Nacional de Investigaciones Científicas y Técnicas. Centro Científico Tecnológico Conicet - Santa Fe. Instituto de Investigación en Señales, Sistemas e Inteligencia Computacional. Universidad Nacional del Litoral. Facultad de Ingeniería y Ciencias Hídricas. Instituto de Investigación en Señales, Sistemas e Inteligencia Computacional; Argentina Fil: Rufiner, Hugo Leonardo. Consejo Nacional de Investigaciones Científicas y Técnicas. Centro Científico Tecnológico Conicet - Santa Fe. Instituto de Investigación en Señales, Sistemas e Inteligencia Computacional. Universidad Nacional del Litoral. Facultad de Ingeniería y Ciencias Hídricas. Instituto de Investigación en Señales, Sistemas e Inteligencia Computacional; Argentina. Universidad Nacional de Entre Ríos. Facultad de Ingeniería; Argentina

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APA 7

Peterson, V. E. A. (2017). Generalized Sparse Discriminant Analysis for Event-Related Potential Classification. http://hdl.handle.net/11336/47045

MLA

Peterson, Victoria et al. "Generalized Sparse Discriminant Analysis for Event-Related Potential Classification." 2017. http://hdl.handle.net/11336/47045.

Chicago

Peterson, Victoria et al. 2017. "Generalized Sparse Discriminant Analysis for Event-Related Potential Classification.". http://hdl.handle.net/11336/47045.

Harvard

Peterson, V. E. A. 2017, Generalized Sparse Discriminant Analysis for Event-Related Potential Classification, Elsevier, available at: http://hdl.handle.net/11336/47045 [Accessed 5 Aug. 2026].

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Titolo
Generalized Sparse Discriminant Analysis for Event-Related Potential Classification
Autore / collaboratori
Peterson, Victoria et al
Editore
Elsevier
Anno di pubblicazione
2017
ISSN
1746-8094
ISSN
1746-8094
Lingua
Inglés

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