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Detection of epileptic spikes in EEG based on wavelet packet transform(PDF)

《中国医学物理学杂志》[ISSN:1005-202X/CN:44-1351/R]

Issue:
2020年第11期
Page:
1428-1435
Research Field:
医学信号处理与医学仪器
Publishing date:

Info

Title:
Detection of epileptic spikes in EEG based on wavelet packet transform
Author(s):
ZHU Ningning1 LI Hao1 DENG Xiaoqiao1 YU Ming2 LI Xiaolong1
1. School of Electronics and Information, Jiangsu University of Science and Technology, Zhenjiang 212000, China 2. Department of Neurology, Affiliated Hospital of Jiangsu University, Zhenjiang 212000, China
Keywords:
Keywords: epileptic spike detection wavelet packet transform signal reconstruction missed detection rate false detection rate
PACS:
R318
DOI:
DOI:10.3969/j.issn.1005-202X.2020.11.016
Abstract:
Abstract: An algorithm combining the physical characteristics (amplitude, frequency) of spikes and wavelet packet transform is proposed for better the spike detection in the electroencephalogram (EEG) signals of epilepsy patients. Firstly, wavelet packet transform is used to decompose the epilepsy EEG signals by wavelet packet decomposition the EEG frequency (0-30 Hz) into 3 layers. Secondly, the third layer node frequencies of S(3, 0) (0-10.85 Hz), S(3,1) (10.85-21.70 Hz), S(3,2) (21.70-32.55 Hz) are reconstructed according to the frequency range of EEG signals. Finally, the spike amplitude is taken as the detection threshold to extract the epileptic spikes in healthy period and the intermittent period between epilepsy attacks, and during epilepsy attacks. The experimental results show that when the sampling frequency of the data is 173.61 Hz and the signal length is 23.6 s, the algorithm can extract the spike signals of different epilepsy patients in different periods, and that the rates of false detection and missed detection of the proposed algorithm are 12.02% and 11.70%. The proposed algorithm has a good performance in the detection of epileptic spikes.

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Last Update: 2020-12-02