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Epileptic state detection : Pre-ictal, inter-ictal, ictal

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info:eu-repo/semantics/openAccess

Date

2015

Author

Yayık, Apdullah
Yıldırım, Esen
Kutlu, Yakup
Yıldırım, Serdar

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Abstract

Epileptic seizure detection and prediction from electroencephalography (EEG) is a vital area of research. In this study, SecondOrder Difference Plot (SODP) is used to extract features based on consecutive difference of time domain values from three states of EEG (pre-ictal, ictal and inter-ictal), and Multi-Layer Neural Network classifier is used to classify these three classes. The proposed technique is tested on a publicly available EEG database and classified with Naive Bayes and k-nearest neighbor classifiers. As a result, it is shown that overall accuracy of 98.70% can be achieved by using the proposed system with Neural Network classifier.
 
Epileptic seizure detection and prediction from electroencephalography (EEG) is a vital area of research. In this study, SecondOrder Difference Plot (SODP) is used to extract features based on consecutive difference of time domain values from three states of EEG (pre-ictal, ictal and inter-ictal), and Multi-Layer Neural Network classifier is used to classify these three classes. The proposed technique is tested on a publicly available EEG database and classified with Naive Bayes and k-nearest neighbor classifiers. As a result, it is shown that overall accuracy of 98.70% can be achieved by using the proposed system with Neural Network classifier.
 

Source

International Journal of Intelligent Systems and Applications in Engineering

Volume

3

Issue

1

URI

https://trdizin.gov.tr/publication/paper/detail/TVRreU56Y3dNQT09
https://hdl.handle.net/20.500.12483/2326

Collections

  • TR Dizin İndeksli Yayınlar [2605]
  • Öksüz Yayınlar Koleksiyonu - TR Dizin [2392]



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