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Med Biol Eng Comput ; 53(7): 609-22, 2015 Jul.
Artículo en Inglés | MEDLINE | ID: mdl-25773367

RESUMEN

In this study, the magnitude and spatial distribution of frequency spectrum in the resting electroencephalogram (EEG) were examined to address the problem of detecting alcoholism in the cerebral motor cortex. The EEG signals were recorded from chronic alcoholic conditions (n = 20) and the control group (n = 20). Data were taken from motor cortex region and divided into five sub-bands (delta, theta, alpha, beta-1 and beta-2). Three methodologies were adopted for feature extraction: (1) absolute power, (2) relative power and (3) peak power frequency. The dimension of the extracted features is reduced by linear discrimination analysis and classified by support vector machine (SVM) and fuzzy C-mean clustering. The maximum classification accuracy (88 %) with SVM clustering was achieved with the EEG spectral features with absolute power frequency on F4 channel. Among the bands, relatively higher classification accuracy was found over theta band and beta-2 band in most of the channels when computed with the EEG features of relative power. Electrodes wise CZ, C3 and P4 were having more alteration. Considering the good classification accuracy obtained by SVM with relative band power features in most of the EEG channels of motor cortex, it can be suggested that the noninvasive automated online diagnostic system for the chronic alcoholic condition can be developed with the help of EEG signals.


Asunto(s)
Alcoholismo/fisiopatología , Electroencefalografía/clasificación , Electroencefalografía/métodos , Corteza Motora/fisiopatología , Máquina de Vectores de Soporte , Adulto , Estudios de Casos y Controles , Enfermedad Crónica , Análisis por Conglomerados , Lógica Difusa , Humanos , Masculino , Procesamiento de Señales Asistido por Computador
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