COMPLEXITY ANALYSIS OF DENSE ARRAY EEG SIGNAL REVEALS SEX DIFFERENCE

This article deals with the complexity aspect of the recorded electroencephalogram (EEG) signal from male and female subjects. The analysis follows direct application of time series measures of global linear complexity and characterization of the embedded complexity in the signals using the nonlinea...

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Published inInternational journal of neuroscience Vol. 115; no. 4; pp. 445 - 460
Main Authors PRAVITHA, R., SRENNIVASAN, R., NAMPOORI, V. P. N.
Format Journal Article
LanguageEnglish
Published London Informa UK Ltd 2005
Taylor & Francis
Subjects
Online AccessGet full text
ISSN0020-7454
1563-5279
1543-5245
DOI10.1080/00207450590520911x

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Abstract This article deals with the complexity aspect of the recorded electroencephalogram (EEG) signal from male and female subjects. The analysis follows direct application of time series measures of global linear complexity and characterization of the embedded complexity in the signals using the nonlinear statistic of approximate entropy. The study reveals significant differences in complexity between the two sex groups during passive, no-task conditions, whereas no apparent variation exists during a mental task state. The detection of subtle changes as well as the ease in presenting a global picture of the complexity variation on the human cortical surface makes the nonlinear statistic a better marker of system complexity.
AbstractList This article deals with the complexity aspect of the recorded electroencephalogram (EEG) signal from male and female subjects. The analysis follows direct application of time series measures of global linear complexity and characterization of the embedded complexity in the signals using the nonlinear statistic of approximate entropy. The study reveals significant differences in complexity between the two sex groups during passive, no-task conditions, whereas no apparent variation exists during a mental task state. The detection of subtle changes as well as the ease in presenting a global picture of the complexity variation on the human cortical surface makes the nonlinear statistic a better marker of system complexity.
This article deals with the complexity aspects of the recorded electroencephalogram (EEG) signal from male and female subjects. The analysis follows direct application of time series measures of global linear complexity and characterization of the embedded complexity in the signals using the nonlinear statistic of approximate entropy. The study reveals significant differences in complexity between the two sex groups during passive, no-task conditions, whereas no apparent variation exists during a mental task state. The detection of subtle changes as well as the ease in presenting a global picture of the complexity variation on the human cortical surface makes the nonlinear statistic a better marker of system complexity.
This article deals with the complexity aspects of the recorded electroencephalogram (EEG) signal from male and female subjects. The analysis follows direct application of time series measures of global linear complexity and characterization of the embedded complexity in the signals using the nonlinear statistic of approximate entropy. The study reveals significant differences in complexity between the two sex groups during passive, no-task conditions, whereas no apparent variation exists during a mental task state. The detection of subtle changes as well as the ease in presenting a global picture of the complexity variation on the human cortical surface makes the nonlinear statistic a better marker of system complexity.This article deals with the complexity aspects of the recorded electroencephalogram (EEG) signal from male and female subjects. The analysis follows direct application of time series measures of global linear complexity and characterization of the embedded complexity in the signals using the nonlinear statistic of approximate entropy. The study reveals significant differences in complexity between the two sex groups during passive, no-task conditions, whereas no apparent variation exists during a mental task state. The detection of subtle changes as well as the ease in presenting a global picture of the complexity variation on the human cortical surface makes the nonlinear statistic a better marker of system complexity.
Author PRAVITHA, R.
SRENNIVASAN, R.
NAMPOORI, V. P. N.
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Issue 4
Keywords Human
time series analysis
complexity
Cerebral cortex
sex difference
EEG
Central nervous system
Electrophysiology
Cognition
Electroencephalography
Encephalon
global linear measures
Information processing
Linear complexity
Sexual dimorphism
approximate entropy
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Snippet This article deals with the complexity aspect of the recorded electroencephalogram (EEG) signal from male and female subjects. The analysis follows direct...
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StartPage 445
SubjectTerms Adult
approximate entropy
Behavioral psychophysiology
Biological and medical sciences
Brain - physiology
complexity
EEG
Electroencephalography
Electrophysiology
Entropy
Female
Fundamental and applied biological sciences. Psychology
global linear measures
Humans
Male
Models, Neurological
Nonlinear Dynamics
Psychology. Psychoanalysis. Psychiatry
Psychology. Psychophysiology
Sex Characteristics
sex difference
time series analysis
Title COMPLEXITY ANALYSIS OF DENSE ARRAY EEG SIGNAL REVEALS SEX DIFFERENCE
URI https://www.tandfonline.com/doi/abs/10.1080/00207450590520911x
https://www.ncbi.nlm.nih.gov/pubmed/15825251
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Volume 115
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