Literature DB >> 11200177

Complexity analysis of spontaneous EEG.

J Bhattacharya1.   

Abstract

The aim of the present paper is the assessment of the overall complexity of spontaneous and non-paroxysmal EEG signals obtained from three groups of human subjects, e.g., healthy, seizure and mania. Linear complexity measure suitable for multi-variate signals, along with nonlinear measures such as approximate entropy (ApEn) and Taken's estimator are considered. The degree of linear complexity is significantly reduced for the pathological groups compared with healthy group. The nonlinear measures of complexity are significantly decreased in the seizure group for most of the electrodes, whereas a distinct discrimination between the maniac and healthy groups based on these nonlinear measures is not evident.

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Year:  2000        PMID: 11200177

Source DB:  PubMed          Journal:  Acta Neurobiol Exp (Wars)        ISSN: 0065-1400            Impact factor:   1.579


  14 in total

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8.  Mild Depression Detection of College Students: an EEG-Based Solution with Free Viewing Tasks.

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10.  Nonlinear analysis of EEG signals at different mental states.

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Journal:  Biomed Eng Online       Date:  2004-03-16       Impact factor: 2.819

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