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Investigation of New Statistical Features for BCI Based Sleep Stages Recognition through EEG Bio-signals

机译:基于BCI的睡眠阶段识别新统计特征的研究

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Electroencephalogram (EEG) is one of the oldest techniques available to read brain data. It is a methodology to measure and record the electrical activity of brain using sensitive sensors attached to the scalp. Brain's electrical activity is visualized on computers in form of signals through BCI tools. It is also possible to convert these signals into digital commands to provide human-computer interaction (HCI) through adaptive user interfaces. In this study, a set of statistical features: mean entropy, skew-ness, kurtosis and mean power of wavelets are proposed to enhance human sleep stages recognition through EEG signal. Additionally, an adaptive user interface for vigilance level recognition is introduced. One-way ANOVA test is employed for feature selection. EEG signals are decomposed into frequency sub-bands using discrete wavelet transform and selected statistical features are employed in SVM for recognition of human sleep stages: stage 1, stage 3, stage REM and stage AWAKE. According to experimental results, proposed statistical features have a significant discrimination rate for true classification of sleep stages with linear SVM. The accuracy of linear SVM reaches to 93% in stage 1, 82% in stage 3, 73% in stage REM and 96% in stage AWAKE with proposed statistical features.
机译:脑电图(EEG)是读取大脑数据可用的最古老的技术之一。它是一种使用附着在头皮上的敏感传感器来测量和记录大脑电活动的方法。通过BCI工具以信号形式可视化脑的电气活动。还可以将这些信号转换为数字命令,以通过自适应用户界面提供人机交互(HCI)。在这项研究中,提出了一组统计特征:提出了一组统计特征:提出了小波的平均熵,脉络,峰值和平均力量,以增强人类睡眠阶段通过EEG信号识别。另外,介绍了用于警惕水平识别的自适应用户界面。单向ANOVA测试用于特征选择。 EEG信号使用离散小波变换分解为频率子带和选择的统计特征在SVM用于识别人的睡眠阶段:阶段1,阶段3,阶段REM和阶段AWAKE。根据实验结果,提出的统计特征具有具有线性SVM的真正分类的显着歧视率。线性SVM的准确性在第1阶段达到93%,在第3阶段阶段的82%,阶段阶段73%,阶段秋季醒目中的96%与提出的统计特征。

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