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Mental and Motor Task Classification by LDA

机译:LDA的心理和运动任务分类

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摘要

Electroencephalogram (EEG) is the easiest and the painless method to reveal the electrical activity of the brain tissue in order to understand the functioning of the brain and also for clinical diagnostics. When the mental differences identified from EEG signals, this could led to handicapped people to communicate with their surroundings. The work presented here is aimed to classify two different mental tasks and motor behaviors. The features are extracted by power spectral density method and a further step developed to choose six different features from power spectral densities. The generated feature vectors are transferred to the classifier. The classification is done with the classical Linear Discriminant Analysis method. A considerable difference value has been reached for mental tasks and the hemispheric changes. Due to the frequency changes at each electrode locations, a control methodology for the people who are lack of movement control can be developed.
机译:脑电图(EEG)是最简单的和无痛的方法,以揭示脑组织的电活动,以了解大脑的功能以及临床诊断。当从EEG信号中确定的心理差异时,这可能导致有残障人士与周围环境进行沟通。这里提出的工作旨在对两种不同的心理任务和运动行为进行分类。通过功率谱密度方法提取该特征,并开发出从功率谱密度选择六种不同特征的进一步步骤。生成的特征向量被传送到分类器。通过经典线性判别分析方法进行分类。对精神任务和半球变化达到了相当大的差值。由于每个电极位置的频率变化,可以开发出缺乏运动控制的人的控制方法。

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