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Realistic and Spherical Head Modeling for EEG Forward Problem Solution: A Comparative Cortex-Based Analysis

机译:脑电正向问题解决方案的现实和球形头部建模:基于比较皮质的分析

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摘要

The accuracy of forward models for electroencephalography (EEG) partly depends on head tissues geometry and strongly affects the reliability of the source reconstruction process, but it is not yet clear which brain regions are more sensitive to the choice of different model geometry. In this paper we compare different spherical and realistic head modeling techniques in estimating EEG forward solutions from current dipole sources distributed on a standard cortical space reconstructed from Montreal Neurological Institute (MNI) MRI data. Computer simulations are presented for three different four-shell head models, two with realistic geometry, either surface-based (BEM) or volume-based (FDM), and the corresponding sensor-fitted spherical-shaped model. Point Spread Function (PSF) and Lead Field (LF) cross-correlation analyses were performed for 26 symmetric dipole sources to quantitatively assess models' accuracy in EEG source reconstruction. Realistic geometry turns out to be a relevant factor of improvement, particularly important when considering sources placed in the temporal or in the occipital cortex.
机译:脑电图(EEG)的正向模型的准确性部分取决于头部组织的几何形状,并在很大程度上影响源重建过程的可靠性,但尚不清楚哪个大脑区域对选择不同模型几何形状更敏感。在本文中,我们比较了不同的球形和实际头部建模技术,以从分布在从蒙特利尔神经病学研究所(MNI)MRI数据重建的标准皮质空间中的当前偶极子源估计EEG正解中进行比较。给出了针对三种不同的四壳头部模型的计算机仿真,其中两种具有逼真的几何形状(基于表面的(BEM)或基于体积的(FDM))以及相应的传感器装配的球形模型。对26个对称偶极子源进行了点扩展函数(PSF)和导联场(LF)互相关分析,以定量评估模型在EEG源重建中的准确性。现实的几何形状是改善的一个相关因素,在考虑放置在颞叶或枕叶皮质中的来源时尤其重要。

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