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Experiments on neural networks with different configurations for electroencephalography (EEG) signal pattern classifications in imagination of direction

机译:具有不同配置的神经网络实验(EEG)信号模式的不同配置中的想象力分类

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Here we present experimental results of classification methods for brain activity in the imagination of direction. We used a wireless portable electroencephalography (EEG) headset in our preceding study to collect EEG data from subjects in experiments, during which the subjects imagined arrows indicating one of the four directions: up, down, right, and left. The implemented classification methods consisted of a band-pass filter, fast Fourier transformation, principal component analysis, and neural network. We have applied neural networks with different configurations to the EEG data used in the preceding study in order to improve the classification rate. The experiments conducted in this study demonstrated some improvement results.
机译:在这里,我们呈现了对方向的想象力的大脑活动的分类方法的实验结果。我们在先前的研究中使用了无线便携式脑电图(EEG)耳机,以从实验中收集来自受试者的EEG数据,在此期间,受试者想象了指示四个方向中的一个的箭头:上,向下,右侧和左。实现的分类方法包括带通滤波器,快速傅里叶变换,主成分分析和神经网络。我们已经应用了具有不同配置的神经网络,以提高上述研究中使用的EEG数据,以提高分类率。本研究中进行的实验表明了一些改进的结果。

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