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Author:

Yuan, Ye (Yuan, Ye.) | Xun, Guangxu (Xun, Guangxu.) | Jia, Kebin (Jia, Kebin.) (Scholars:贾克斌) | Zhang, Aidong (Zhang, Aidong.)

Indexed by:

EI Scopus

Abstract:

Epileptic seizure detection has gained increasing attention in clinical therapy. Scalp electroencephalogram (EEG) analysis is a common way to capture brain abnormality for seizure onset detection. This paper presents a novel context-learning based approach using multi-feature fusion to compensate for incomplete description of single feature in epileptic EEG signals. First, EEG scalogram sequence is generated using wavelet transform to represent the time-frequency information. Second, three sets of EEG context features are unsupervisedly learned in parallel by using global principal component analysis (GPCA), stacked denoising autoencoders (SDAEs) and EEG embeddings, respectively. Finally, the multi-features are concatenated into a fixed-length feature vector for seizure classification. The experimental results conducted on two real EEG datasets demonstrate that the proposed cross-patient learning model is able to extract meaningful context features from different perspectives, and hence can detect the onset of epileptic seizure effectively. © 2017 IEEE.

Keyword:

Neurodegenerative diseases Electroencephalography Wavelet transforms Bioinformatics Learning systems Neurophysiology

Author Community:

  • [ 1 ] [Yuan, Ye]Advanced Innovation Center for Future Internet Technology, Beijing University of Technology, Beijing, China
  • [ 2 ] [Yuan, Ye]Beijing Laboratory of Advanced Information Networks, Beijing, China
  • [ 3 ] [Yuan, Ye]College of Information and Communication Engineering, Beijing University of Technology, Beijing, China
  • [ 4 ] [Xun, Guangxu]Department of Computer Science and Engineering, State University of New York at Buffalo, NY, United States
  • [ 5 ] [Jia, Kebin]Advanced Innovation Center for Future Internet Technology, Beijing University of Technology, Beijing, China
  • [ 6 ] [Jia, Kebin]Beijing Laboratory of Advanced Information Networks, Beijing, China
  • [ 7 ] [Jia, Kebin]College of Information and Communication Engineering, Beijing University of Technology, Beijing, China
  • [ 8 ] [Zhang, Aidong]Department of Computer Science and Engineering, State University of New York at Buffalo, NY, United States

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Year: 2017

Volume: 2017-January

Page: 694-699

Language: English

Cited Count:

WoS CC Cited Count: 0

SCOPUS Cited Count: 36

ESI Highly Cited Papers on the List: 0 Unfold All

WanFang Cited Count:

Chinese Cited Count:

30 Days PV: 9

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