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Research on chaotic behavior of epilepsy electroencephalogram of children based on independent component analysis algorithm / 生物医学工程学杂志
Journal of Biomedical Engineering ; (6): 835-841, 2007.
Article in Chinese | WPRIM | ID: wpr-346059
ABSTRACT
In this paper, Independent component analysis (ICA) was first adopted to isolate the epileptiform signals from the background Electroencephalogram (EEG) signals. Then, by using the phase space reconstruct techniques from a time series and the quantitative criterions and rules of system chaos, different phases of the epileptiform signals were analyzed and calculated. Through the comparative research with the analyses of the phase plots, the power spectra, the computation of the correlation dimensions and the Lyapunov exponents of the physiologyical and the epileptiform signals, the following conclusions were drawn (1) The phase plots, the power spectra, the correlation dimensions and the Lyapunov exponents of the EEG independent components reflect the general dynamical characteristics of brains, which can be taken as a quantitative index to weigh the healthy states of brains. (2) Under normal physiological conditions, the EEG signals are chaotic, while under epilepsy conditions the signals approach regularity.
Subject(s)
Full text: Available Index: WPRIM (Western Pacific) Main subject: Algorithms / Signal Processing, Computer-Assisted / Data Interpretation, Statistical / Nonlinear Dynamics / Electroencephalography / Epilepsy / Methods Type of study: Prognostic study Limits: Child / Female / Humans / Male Language: Chinese Journal: Journal of Biomedical Engineering Year: 2007 Type: Article

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Full text: Available Index: WPRIM (Western Pacific) Main subject: Algorithms / Signal Processing, Computer-Assisted / Data Interpretation, Statistical / Nonlinear Dynamics / Electroencephalography / Epilepsy / Methods Type of study: Prognostic study Limits: Child / Female / Humans / Male Language: Chinese Journal: Journal of Biomedical Engineering Year: 2007 Type: Article