A High-Performance Method Based on Features Fusion of EEG Brain Signal and MRI-Imaging Data for Epilepsy Classification
Author:
Affiliation:
1. IT Department , Bolu Abant-Izzet Baysal University , Gölköy , , Bolu , Turkey
2. Department of Computer Engineering, Faculty of Engineering , University of Istanbul-Cerrahpasa , Avcılar , , Istanbul , Turkey
Abstract
Publisher
Walter de Gruyter GmbH
Link
https://www.sciendo.com/pdf/10.2478/msr-2024-0001
Reference28 articles.
1. World Health Organization. (2005). Atlas: Epilepsy Care in the World. ISBN 92-4-156303-6.
2. Anderson, C. W., Sijercic, Z. (1996). Classification of EEG signals from four subjects during five mental tasks. In Proceedings International Conference on Engineering Applications of Neural Networks (EANN’96). Systems Engineering Association, 407-414.
3. Kalaycı, T., Özdamar, O. (1995). Wavelet preprocessing for automated neural network detection of EEG spikes. IEEE Engineering in Medicine and Biology Magazine, 14 (2), 160-166. https://doi.org/10.1109/51.376754
4. Subasi A., Ismail Gursoy, M. (2010). EEG signal classification using PCA, ICA, LDA and support vector machines. Expert Systems with Applications, 37 (12), 8659-8666. https://doi.org/10.1016/j.eswa.2010.06.065
5. Oğulata, S. N., Şahin, C., Erol, R. (2009). Neural network-based computer-aided diagnosis in classification of primary generalized epilepsy by EEG signals. Journal of Medical Systems, 33 (2), 107-112. https://doi.org/10.1007/s10916-008-9170-8
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