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基于近似熵快速算法的静息态脑磁信号分析

黄晓霞 王盼盼

华中师范大学学报(自然科学版)2017,Vol.51Issue(3):309-316,8.
华中师范大学学报(自然科学版)2017,Vol.51Issue(3):309-316,8.

基于近似熵快速算法的静息态脑磁信号分析

Resting-state magnetic signals analysis based on the fast algorithm of approximate entropy

黄晓霞 1王盼盼1

作者信息

  • 1. 上海海事大学信息工程学院,上海200135
  • 折叠

摘要

Abstract

In order to study the nonlinear dynamics of the schizophrenic patient's MEG signals in resting-state,this paper presents a method of feature extraction which combined the wavelet variation with the approximate entropy.The brain magnetic signals of 10 controls and 10 patients are decomposed to six levels by wavelet decomposition and wavelet coefficient is extracted corresponding to the θ rhythm and a rhythm of MEG signals.Then the distribution of approximate entropy between two kinds of people are calculated and compared.The experiment results show that the entropy of each brain region and channel of the MEG signals in schizophrenic patients were generally higher than controls under the same situation,especially frontal and central regions in α rhythm.This result provides a guideline for the study of EEG signal characteristics of the patients and establishes the appropriate classification diagnostic model.

关键词

脑磁信号/小波变换/近似熵/精神分裂症

Key words

magnetoencephalography/wavelet transform/approximate entropy/schizophrenia

分类

医药卫生

引用本文复制引用

黄晓霞,王盼盼..基于近似熵快速算法的静息态脑磁信号分析[J].华中师范大学学报(自然科学版),2017,51(3):309-316,8.

基金项目

第48批教育部留学回国人员科研启动基金项目. ()

华中师范大学学报(自然科学版)

OA北大核心CSTPCD

1000-1190

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