JOURNAL ARTICLE

Epileptic Seizure Detection Based on Semi-supervised Generative Adversarial Network

Xiaojia Liu

Year: 2023 Journal:   Journal of Physics Conference Series Vol: 2562 (1)Pages: 012006-012006   Publisher: IOP Publishing

Abstract

Abstract Since the manual diagnosis of electroencephalograph (EEG) recordings requires a lot of labor and material costs for clinical seizure detection, the annotation for seizure data is of great challenge for seizure detection. To tackle the issue of small samples of epilepsy-labeled data, we propose a semi-supervised generative adversarial network-based seizure detection method. To begin with, a Butterworth filter is used to preprocess the EEG, and the filtered EEG signal is input into the SGAN model. Finally, the output of the SGAN model is subjected to post-processing operations including averaging filtering and threshold comparison, and the discriminative result of whether the tested EEG is a seizure is output. The method achieved an average sensitivity of 90.36%, an average specificity of 93.72%, and an average accuracy of 93.72% in the CHB-MIT EEG dataset. Experiments demonstrate that the semi-supervised generative adversarial network has more accurate classification performance in epilepsy detection.

Keywords:
Electroencephalography Discriminative model Computer science Artificial intelligence Epileptic seizure Epilepsy Pattern recognition (psychology) Filter (signal processing) Generative grammar Machine learning Psychology Neuroscience Computer vision

Metrics

1
Cited By
0.26
FWCI (Field Weighted Citation Impact)
7
Refs
0.49
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

EEG and Brain-Computer Interfaces
Life Sciences →  Neuroscience →  Cognitive Neuroscience
Blind Source Separation Techniques
Physical Sciences →  Computer Science →  Signal Processing
Advanced Memory and Neural Computing
Physical Sciences →  Engineering →  Electrical and Electronic Engineering

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