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Effect of sleep deprivation on estimated distributed sources for Scalp EEG signals: A case study on human drivers

机译:睡眠剥夺对头皮脑电信号估计分布源的影响:以人类驾驶员为例

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The Scalp EEG is a large-scale & robust information source about neocortical dynamic functions. In this paper, we analyze a scalp Electro-Encephalogram (EEG) database of 12 human subjects driving on a simulated condition in laboratory, in 11 different stages of fatigue for characterizing the source natures on the cortex surface. In this paper, the Linear Distributed Current Dipole Approach is used. We have used standardized Low Resolution Brain Electromagnetic Tomography (sLORETA) algorithm, which upon construction of a Lead-field Matrix or a Head model consisting of a grid of 10014 voxels, spatially maps the surface data to corresponding corticular dipole sources at each voxel. The information measures such as Renyi, Shannon & Tsallis entropies of the scouts or voxels nearest to specific electrodes are calculated for various subjects & for varying fatigue levels.
机译:头皮脑电图是有关新皮层动态功能的大规模且强大的信息源。在本文中,我们分析了在模拟条件下在实验室中驾驶的12个人类受试者在11个不同疲劳阶段的头皮脑电图(EEG)数据库,以表征皮层表面的来源性质。在本文中,使用了线性分布电流偶极子方法。我们使用了标准化的低分辨率脑电磁层析成像(sLORETA)算法,该算法在构造由10014个体素网格组成的Lead-field矩阵或Head模型时,会将表面数据在空间上映射到每个体素上相应的皮质偶极子源。针对各种对象和不同的疲劳水平,计算了诸如侦察兵或体素的Renyi,Shannon和Tsallis熵等信息量度,这些信息量与特定电极最接近。

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