Analyzing brain signals using decision trees: an approach based on neuroscience

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Diana Francisca Adamatti
Josimara Silveira
Fernanda Carvalho

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This paper presents a case study of treatment of brain signals using decision trees to classify of these signals, and they are analysed based on neuroscience. We have collected brain signals for 3 subjects during an imagination task and we classify these signals using decision trees, a supervised machine learning method. To analyse the processing data and basing in neuroscience, we have defined a matching between the electrodes position and the corresponding functions into brain. The results are promising, because we can better under-stand the brain e its functionalities.

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