Literature DB >> 35339011

Deep feature fusion based childhood epilepsy syndrome classification from electroencephalogram.

Xiaonan Cui1, Dinghan Hu1, Peng Lin1, Jiuwen Cao2, Xiaoping Lai3, Tianlei Wang1, Tiejia Jiang4, Feng Gao4.   

Abstract

Accurate classification of the children's epilepsy syndrome is vital to the diagnosis and treatment of epilepsy. But existing literature mainly focuses on seizure detection and few attention has been paid to the children's epilepsy syndrome classification. In this paper, we present a study on the classification of two most common epilepsy syndromes: the benign childhood epilepsy with centro-temporal spikes (BECT) and the infantile spasms (also known as the WEST syndrome), recorded from the Children's Hospital, Zhejiang University School of Medicine (CHZU). A novel feature fusion model based on the deep transfer learning and the conventional time-frequency representation of the scalp electroencephalogram (EEG) is developed for the epilepsy syndrome characterization. A fully connected network is constructed for the feature learning and syndrome classification. Experiments on the CHZU database show that the proposed algorithm can offer an average of 92.35% classification accuracy on the BECT and WEST syndromes and their corresponding normal cases.
Copyright © 2022 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Children epileptic syndrome; Linear predictive cepstral coefficient; Mel frequency cepstral coefficients; Statistical features; Transfer learning; Wavelet packet features

Mesh:

Year:  2022        PMID: 35339011     DOI: 10.1016/j.neunet.2022.03.014

Source DB:  PubMed          Journal:  Neural Netw        ISSN: 0893-6080


  1 in total

1.  An Intelligent Epileptic Prediction System Based on Synchrosqueezed Wavelet Transform and Multi-Level Feature CNN for Smart Healthcare IoT.

Authors:  Kunpeng Song; Jiajia Fang; Lei Zhang; Fangni Chen; Jian Wan; Neal Xiong
Journal:  Sensors (Basel)       Date:  2022-08-27       Impact factor: 3.847

  1 in total

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