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[IEEE IEEE John Vincent Atanasoff 2006 International Symposium on Modern Computing (JVA'06) - Sofia, Bulgaria (2006.10.3-2006.10.3)] IEEE John Vincent Atanasoff 2006 International Symposium on Modern Computing (JVA'06) - EEG Signal Classification Using Wavelet Feature Extraction and Neural Networks

โœ Scribed by Jahankhani, Pari; Kodogiannis, Vassilis; Revett, Kenneth


Book ID
120038895
Publisher
IEEE
Year
2006
Weight
182 KB
Category
Article
ISBN-13
9780769526430

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โœฆ Synopsis


Decision Support Systems have been utilised since 1960, providing physicians with fast and accurate means towards more accurate diagnoses and increased tolerance when handling missing or incomplete data. This paper describes the application of neural network models for classification of electroencephalogram (EEG) signals. Decision making was performed in two stages: initially, a feature extraction scheme using the wavelet transform (WT) has been applied and then a learning-based algorithm classifier performed the classification. The performance of the neural model was evaluated in terms of training performance and classification accuracies and the results confirmed that the proposed scheme has potential in classifying the EEG signals.


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