Næss Solveig, Chintaluri Chaitanya, Ness Torbjørn V, Dale Anders M, Einevoll Gaute T, Wójcik Daniel K
Department of Informatics, University of Oslo, Oslo, Norway.
Department of Neurophysiology, Nencki Institute of Experimental Biology, Warsaw, Poland.
Front Hum Neurosci. 2017 Oct 18;11:490. doi: 10.3389/fnhum.2017.00490. eCollection 2017.
The EEG signal is generated by electrical brain cell activity, often described in terms of current dipoles. By applying EEG forward models we can compute the contribution from such dipoles to the electrical potential recorded by EEG electrodes. Forward models are key both for generating understanding and intuition about the neural origin of EEG signals as well as inverse modeling, i.e., the estimation of the underlying dipole sources from recorded EEG signals. Different models of varying complexity and biological detail are used in the field. One such analytical model is the which assumes a four-layered spherical head where the layers represent brain tissue, cerebrospinal fluid (CSF), skull, and scalp, respectively. While conceptually clear, the mathematical expression for the electric potentials in the four-sphere model is cumbersome, and we observed that the formulas presented in the literature contain errors. Here, we derive and present the correct analytical formulas with a detailed derivation. A useful application of the analytical four-sphere model is that it can serve as ground truth to test the accuracy of numerical schemes such as the Finite Element Method (FEM). We performed FEM simulations of the four-sphere head model and showed that they were consistent with the corrected analytical formulas. For future reference we provide scripts for computing EEG potentials with the four-sphere model, both by means of the correct analytical formulas and numerical FEM simulations.
脑电图(EEG)信号由脑细胞的电活动产生,通常用电流偶极子来描述。通过应用EEG正向模型,我们可以计算这些偶极子对EEG电极记录的电势的贡献。正向模型对于理解EEG信号的神经起源以及进行逆向建模(即从记录的EEG信号中估计潜在的偶极子源)都至关重要。该领域使用了不同复杂度和生物学细节的模型。一种这样的分析模型是[此处原文缺失具体模型名称],它假设头部为四层球体,各层分别代表脑组织、脑脊液(CSF)、颅骨和头皮。虽然概念清晰,但四球体模型中电势的数学表达式很繁琐,而且我们发现文献中给出的公式存在错误。在此,我们推导并给出了正确的分析公式及详细推导过程。分析四球体模型的一个有用应用是,它可作为检验有限元法(FEM)等数值方法准确性的基准。我们对四球体头部模型进行了FEM模拟,结果表明模拟结果与修正后的分析公式一致。为方便未来参考,我们提供了通过正确的分析公式和数值FEM模拟来计算四球体模型EEG电势的脚本。