EEG analysis using wavelet-based information tools

  • Talk

  • Osvaldo A
  • Rosso, Universidad de Buenos Aires
  • May 19, 2006, 4 p.m.
  • Sala de Juntes, Ed. Mateu Orfila
  • Announcement file

Wavelet-based informational tools for quantitative electroencephalogram (EEG) record analysis are reviewed. Relative wavelet energies, wavelet entropies and wavelet statistical complexities are used in the characterization of scalp EEG records corresponding to secondary
generalized tonic-clonic epileptic seizures. In particular, we show that the epileptic recruitment rhythm observed during seizure development is
well described in terms of the relative wavelet energies. In addition, during the concomitant time-period the entropy diminishes while complexity grows. This is construed as evidence supporting the
conjecture that an epileptic focus, for this kind of seizures, triggers a self-organized brain state characterized by both order and maximal complexity.


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