JOURNAL ARTICLE

Analysis of P300 Classifiers in Brain Computer Interface Speller

Hamed MirghasemiReza Fazel-RezaiMohammad Bagher Shamsollahi

Year: 2006 Journal:   Conference proceedings   Publisher: Institute of Electrical and Electronics Engineers

Abstract

In this paper, the performance of five classifiers in P300 speller paradigm are compared. Theses classifiers are Linear Support Vector Machine (LSVM), Gaussian Support Vector Machine (GSVM), Neural Network (NN), Fisher Linear Discriminant (FLD), and Kernel Fisher Discriminant (KFD). In classification of P300 waves, there has been a trend to use SVM classifiers. Although they have shown a good performance, in this paper, it is shown that the FLD classifiers outperform the SVM classifiers. FLD classifier uses only ten channels of the recorded electroencephalogram (EEG) signals. This makes them a very good candidate for real-time applications. In addition, FLD approach does not need any optimization similar to other methods. In addition, in this paper, it is shown that the efficiency of using Principal Component Analysis (PCA) for feature reduction results in decreasing the time for the classification and increasing the accuracy

Keywords:
Linear discriminant analysis Support vector machine Pattern recognition (psychology) Artificial intelligence Computer science Brain–computer interface Principal component analysis Kernel Fisher discriminant analysis Classifier (UML) Linear classifier Random subspace method Speech recognition Kernel (algebra) Artificial neural network Machine learning Electroencephalography Kernel method Mathematics

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7
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0
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0.49
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Citation History

Topics

EEG and Brain-Computer Interfaces
Life Sciences →  Neuroscience →  Cognitive Neuroscience
Neural Networks and Applications
Physical Sciences →  Computer Science →  Artificial Intelligence
Blind Source Separation Techniques
Physical Sciences →  Computer Science →  Signal Processing
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