Epileptic Seizure Detection in EEGs Using Time-Frequency Analysis

被引:510
|
作者
Tzallas, Alexandros T. [1 ,2 ]
Tsipouras, Markos G. [1 ]
Fotiadis, Dimitrios I. [1 ,3 ]
机构
[1] Univ Ioannina, Unit Med Technol & Intelligent Informat Syst, Dept Mat Sci & Technol, GR-45110 Ioannina, Greece
[2] Univ Ioannina, Dept Med Phys, Sch Med, GR-45110 Ioannina, Greece
[3] FORTH, Biomed Res Inst, Ioannina 45110, Greece
关键词
Artificial neural networks (ANNs); EEG; epilepsy; seizure detection; time-frequency (t-f) analysis; ARTIFICIAL NEURAL-NETWORK; SPIKE DETECTION; AUTOMATIC DETECTION; WAVELET ANALYSIS; CLASSIFICATION; LONG;
D O I
10.1109/TITB.2009.2017939
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
The detection of recorded epileptic seizure activity in EEG segments is crucial for the localization and classification of epileptic seizures. However, since seizure evolution is typically a dynamic and nonstationary process and the signals are composed of multiple frequencies, visual and conventional frequency-based methods have limited application. In this paper, we demonstrate the suitability of the time-frequency (t-f) analysis to classify EEG segments for epileptic seizures, and we compare several methods for t-f analysis of EEGs. Short-time Fourier transform and several t-f distributions are used to calculate the power spectrum density (PSD) of each segment. The analysis is performed in three stages: 1) t-f analysis and calculation of the PSD of each EEG segment; 2) feature extraction, measuring the signal segment fractional energy on specific t-f windows; and 3) classification of the EEG segment (existence of epileptic seizure or not), using artificial neural networks. The methods are evaluated using three classification problems obtained from a benchmark EEG dataset, and qualitative and quantitative results are presented.
引用
收藏
页码:703 / 710
页数:8
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