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Joint time-frequency analysis of EEG for the drowsiness detection: a study of cognitive behavioural patterns of the brain

机译:脑电图检测脑电图的关节时频分析:脑的认知行为模式研究

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Drowsiness detection plays a vital role in accidents avoidance systems, thereby saving many precious lives. According to the World Health Organization, drowsiness has been the radical contributor of road fatalities. Electroencephalogram (EEG) is a physiological signal which relays the functioning of brain and is widely used in the diagnosis of neurological disorders. This study extrapolates the EEG signal analysis to examine several cognitive tasks. In this report, the EEG signal is processed to detect the behavioural patterns of the brain and drowsiness state of the drivers while performing monotonous driving for long distances. An eight-channel EEG data acquisition system is used to acquire the EEG data from 13 male volunteers. The EEG signal is pre-processed and decomposed into various rhythms by applying digital filter in MATLAB 2007b (Mathworks, Inc., USA). Time-frequency domain analysis has been done to extract certain features, PSG and PRMSD, which are statistically significant (ρ < 0.05) in the detection of drowsiness. The driving profile is classified into active and drowsy by a threshold, and linear regression analysis has been performed on the features extracted. A drowsiness index is proposed stating a positive correlation (0.8-0.9) between the total mean and the drowsy mean of the subject.
机译:嗜睡检测在事故避免系统中发挥着至关重要的作用,从而节省了许多珍贵的生命。根据世界卫生组织的说法,嗜睡是道路死亡的根本贡献者。脑电图(EEG)是一种在生理信号中继承脑的功能,并且广泛用于神经系统疾病的诊断。本研究推断了EEG信号分析以检查几个认知任务。在本报告中,处理EEG信号以检测驾驶员的大脑的行为模式,同时执行长距离的单调驱动。八通道EEG数据采集系统用于从13名男性志愿者获取EEG数据。通过在Matlab 2007B(Mathworks,Inc.,USA)中应用数字滤波器,预处理和分解成各种节奏。已经完成了时频域分析以提取某些特征,PSG和PRMSD,其在昏昏欲睡的检测中具有统计学意义(ρ<0.05)。驱动轮廓被分类为主动且昏迷通过阈值,并且已经对提取的特征进行了线性回归分析。提出了嗜睡指数,阐述了总平均值和昏昏欲的昏迷之间的正相关(0.8-0.9)。

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