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PSD-Based Features Extraction For EEG Signal During Typing Task

机译:基于PSD的特征在键入任务期间EEG信号的提取

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Electroencephalograph (EEG) is an electrical field that generated by our brain incessantly. The EEG signal released by the brain is different when a people is performing different activities in their daily life. And such EEG signals consist complicated information that can be interpreted. The aims of this study is to analyse the specific EEG channels of a user when they are performing a typing task with laptop. Meanwhile, this research also aimed to verify the performance of the different sub frequency band which is alpha and beta to recognize the specified tasks. The frequency sampling was set at 1024 Hz and the impedance was kept below 5k ohm of each channels. The Truscan EEG (Deymed, Diagnostic, Czech Republic) device consists of 19 channels and only selected channels which is F3 and F4 is filtered through butterworth bandpass filter (lHz-80Hz) in the pre-processing stage. Power Spectra Density was calculated by using Welch and Burg Method to extract the features from filtered data. K-Nearest Neighbour (KNN) classifier and Linear Discriminant Analysis (LDA) were used in classification. It is found that the combination of channel F3 and F4 for Alpha frequency using Welch method gives the highest accuracy which is 98.45%.
机译:脑电图(EEG)是由我们的脑不断产生的电场。当人们在日常生活中表现不同的活动时,大脑释放的EEG信号是不同的。此类EEG信号包括可以解释的复杂信息。本研究的目的是在使用笔记本电脑执行键入任务时分析用户的特定EEG渠道。同时,该研究还旨在验证不同子频带的性能,它是alpha和beta以识别指定的任务。频率采样设定为1024 Hz,阻抗保持在每个通道的5k欧姆以下。 TRUSCAN EEG(DEYMED,诊断,捷克共和国)器件由19个通道组成,仅通过预处理阶段的Butterworth带通滤波器(LHZ-80Hz)过滤滤波器,只有选择的频道。通过使用Welch和BURG方法来计算功率谱密度,以从滤波数据中提取特征。 k最近邻(knn)分类器和线性判别分析(LDA)用于分类。发现使用韦尔C3和F4的通道F3和F4的组合,使用韦尔CHA频率提供最高的精度为98.45%。

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