Literature DB >> 31897615

Automatic Detection of Epileptic Seizures in EEG Using Sparse CSP and Fisher Linear Discrimination Analysis Algorithm.

Rongrong Fu1, Yongsheng Tian2, Peiming Shi2, Tiantian Bao2.   

Abstract

In order to realize the automatic epileptic seizure detection, feature extraction and classification of electroencephalogram (EEG) signals are performed on the interictal, the pre-ictal, and the ictal status of epilepsy patients. There is no effective strategy for selecting the number of channels and spatial filters in feature extraction of multichannel EEG data. Therefore, this paper combined sparse idea and greedy search algorithm to improve the feature extraction of common space pattern. The feature extraction can effectively overcome the repeating selection problem of feature pattern in the eigenvector space by the traditional method. Then we used the Fisher linear discriminant analysis to realize the classification. The results show that the proposed method can get high classification accuracy using fewer data. For 10 subjects, the averaged accuracy of epilepsy detection is more than 99%. So, the detection of an epileptic seizure based on sparse features using Fisher linear discriminant analysis classifiers is more suitable for a reliable, automatic epileptic seizure detection system to enhance the patient's care and the quality of life.

Entities:  

Keywords:  Epileptic seizure detection; Feature extraction; Fisher linear discriminant analysis (FLDA); Sparse common space pattern (SCSP)

Mesh:

Year:  2020        PMID: 31897615     DOI: 10.1007/s10916-019-1504-1

Source DB:  PubMed          Journal:  J Med Syst        ISSN: 0148-5598            Impact factor:   4.460


  17 in total

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3.  Automated Diagnosis of Epilepsy Using Key-Point-Based Local Binary Pattern of EEG Signals.

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4.  Epileptic seizure detection using probability distribution based on equal frequency discretization.

Authors:  Umut Orhan; Mahmut Hekim; Mahmut Ozer
Journal:  J Med Syst       Date:  2011-03-29       Impact factor: 4.460

5.  Prediction of microsleeps using pairwise joint entropy and mutual information between EEG channels.

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Journal:  Conf Proc IEEE Eng Med Biol Soc       Date:  2017-07

6.  Patients' experiences of injury as a result of epilepsy.

Authors:  D Buck; G A Baker; A Jacoby; D F Smith; D W Chadwick
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7.  Classification of Focal and Non Focal Epileptic Seizures Using Multi-Features and SVM Classifier.

Authors:  N Sriraam; S Raghu
Journal:  J Med Syst       Date:  2017-09-02       Impact factor: 4.460

8.  Single-trial classification of motor imagery differing in task complexity: a functional near-infrared spectroscopy study.

Authors:  Lisa Holper; Martin Wolf
Journal:  J Neuroeng Rehabil       Date:  2011-06-18       Impact factor: 4.262

9.  EEG feature comparison and classification of simple and compound limb motor imagery.

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Journal:  J Neuroeng Rehabil       Date:  2013-10-12       Impact factor: 4.262

10.  Single trial classification of motor imagination using 6 dry EEG electrodes.

Authors:  Florin Popescu; Siamac Fazli; Yakob Badower; Benjamin Blankertz; Klaus-R Müller
Journal:  PLoS One       Date:  2007-07-25       Impact factor: 3.240

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  2 in total

1.  Modeling plasticity during epileptogenesis by long short term memory neural networks.

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2.  Automatic Detection of Epilepsy Based on Entropy Feature Fusion and Convolutional Neural Network.

Authors:  Yongxin Sun; Xiaojuan Chen
Journal:  Oxid Med Cell Longev       Date:  2022-05-11       Impact factor: 7.310

  2 in total

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