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Statistical Decision Tree: a tool for studying pharmaco-EEG effects of CNS-active drugs
K T Dago1, R Luthringer, R Lengellé
1Formation pour la Recherche en Neurosciences Appliquées à la Psychiatrie (FORENAP), Centre Hospitalier de Rouffach, France.
Abstract:
Quantitative pharmaco-EEG has become a useful technique for determining pharmacodynamic parameters after CNS-active drug administration. Nevertheless, one of the most important problems faced by practitioners of pharmaco-EEG is the difficulty in evaluating drug-specific effects. In this article, a methodology for comparing two time sequences of pharmacodynamic measurements, the Statistical Decision Tree (SDT), is proposed. This methodology, based on one- and multi-dimensional Wilcoxon signed-rank tests on EEG variables, takes into account vigilance fluctuations and placebo effects in order to pick out effects specifically due to the drug.