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Inverse calculations in EEG source analysis applying the finite difference method, reciprocity and lead fields

机译:eEG源分析中的逆计算应用有限差分法,互惠和铅字段

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The advances in computer power and memory make the finite difference method (FDM) attractive to solve the Poison differential equation. To reduce the calculation time of the inverse procedure in EEG source analysis, the concept of lead fields in combination with the reciprocity theorem are utilized. First the accuracy of the finite difference method is evaluated in a three-shell spherical head model. The potentials at the 27 EEG scalp electrodes are obtained using the FDM in a cubic grid with node spacing of 2.5 mm. The inverse problem is solved applying the analytical expression. The mean localization error is 2 mm (ranging from 0.3 to 4.5 mm for 18 dipoles). Next, the potentials at the electrodes are given by the analytical expression. The inverse fit is then done utilizing 26 lead fields calculated numerically in a cubic grid with node spacing of 4 mm. The mean localization error is 4.1 mm (ranging from 1.2 mm to 7 mm for 18 dipoles). Finally a realistic head model is used. The potentials at the electrodes, obtained numerically in a grid with node spacing of 2.5 mm, are brought in the inverse procedure. 26 lead fields calculated numerically in a grid with node spacing of 4 mm, are then applied to perform the inverse calculations. The mean localization error is 4 mm (ranging from 0.9 to 7.2 mm for 12 dipoles). These result suggest that the FDM in combination with the lead field concept can be used for EEG source analysis.
机译:计算机电力和记忆的进步使有限差分法(FDM)吸引求解毒微分方程。为了减少EEG源分析中的逆过程的计算时间,利用了与互易定理结合的引线字段的概念。首先,在三壳球形头模型中评估有限差分方法的准确性。 27 EEG头皮电极的电位在立方网格中使用的FDM获得,节点间距为2.5mm。解决了逆问题,申请了分析表达。平均定位误差为2毫米(18个偶极子的0.3至4.5 mm)。接下来,通过分析表达给出电极处的电位。然后,利用数值上计算的26个引线字段以4mm的节点间距计算,利用数值计算的26个引线场进行。平均本地化误差为4.1毫米(18个偶极子的1.2 mm至7 mm)。最后使用一个现实的头部模型。电极处的电极在数量上以2.5mm的节点间距的网格中获得的电极进行了逆过程。 26然后应用46个以4mm的网格计算的铅字段,以执行逆计算。平均定位误差为4毫米(12个偶极子的0.9至7.2 mm)。这些结果表明,FDM与铅字段概念结合使用可用于EEG源分析。

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