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Error analysis for nonconfocal ellipsoidal systems in the forward problem of electroencephalography

机译:脑电图前进问题中非共焦椭圆体系误差分析

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Electroencephalography (EEG) remains the utmost important technique recording brain activity. The present investigation examines the sensitivity of analytic algorithms employed in order to evaluate EEG data with respect to different brain template models. These algorithms are based on mathematical models built upon certain geometrical and/or physical assumptions regarding the head-brain shape or the neuronal source. While the ellipsoidal head model provides a realistic approach regarding the interpretation of EEG signals in view of diverse geometries, its eccentricities influence strongly the results. The present study quantifies the deviation of the computed electric potentials when nonconfocal ellipsoids are used to model a homogeneous head conductor. To this end, a correspondence is proposed between points of the different ellipsoids, in view of the Gauss map. The investigation demonstrates that the introduction of nonconfocality imports a highly elevated error rate when EEG recordings are misinterpreted by arriving from different head-brain models, including ellipsoidal vs spherical ones. Moreover, evidence is presented concerning the location of extrema regarding the errors in the upper brain hemisphere, which could lead to a more precise and accurate protocol regarding the placement of sensors. Although the present work refers to the forward EEG problem, its results may be used under other approaches as well. In particular, it provides the error in the solution of an elliptic boundary value problem with transmission conditions under small perturbations of the eccentricities of its ellipsoidal domain.
机译:脑电图(EEG)仍然是记录大脑活动的最重要的技术。本研究检查了所采用的分析算法的敏感性,以便在不同脑模板模型中评估EEG数据。这些算法基于基于关于头脑形状或神经元源的某些几何和/或物理假设的数学模型。虽然椭圆形头部模型提供了关于脑电图信号的解释的现实方法,但由于各种几何形状,其偏心率强烈影响结果。本研究定量当非共焦椭圆体用于模拟均匀头导体时计算的电势的偏差。为此,考虑到高斯地图,在不同椭圆体的点之间提出了对应关系。调查表明,当eEG录音通过从不同的头脑模型抵达时,引入非协调的进口误差率高度升高的误差率,包括椭圆形与球形。此外,关于极值的位置有关上部脑半球错误的迹象,这可能导致关于传感器的放置更准确和准确的协议。虽然本作者是指前锋EEG问题,但也可以在其他方法下使用它的结果。特别是,它在其椭圆域的偏心域的小扰动下,在椭圆边值问题的溶液中提供了误差。

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