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2020 | OriginalPaper | Buchkapitel

An Automated System for Epileptic Seizure Detection Using EEG

verfasst von : Bilal Alam Khan, Anam Hashmi, Omar Farooq

Erschienen in: Advances in Data and Information Sciences

Verlag: Springer Singapore

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Abstract

Epileptic seizures are usually investigated using EEG. The dynamic and statistical properties of brain waves of an individual with seizure are different from a normal person’s brain waves. This paper exploits these underlying properties of EEG using Lyapunov exponent and approximate entropy and proposes a novel statistical feature namely Gini’s coefficient. In this paper, we propose an automated system for detecting seizure using statistical and machine learning algorithm. The data used was publicly available with five different classes (normal to seizure). Linear discriminant analysis (LDA) was used to classify the extracted features. The proposed method gives the best accuracy of 100% in detecting seizure from the EEG.

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Metadaten
Titel
An Automated System for Epileptic Seizure Detection Using EEG
verfasst von
Bilal Alam Khan
Anam Hashmi
Omar Farooq
Copyright-Jahr
2020
Verlag
Springer Singapore
DOI
https://doi.org/10.1007/978-981-15-0694-9_15

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