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Reduced Conductivity Dependence Method for Increase of Dipole Localization Accuracy in the EEG Inverse Problem

机译:降低电导率相关方法以提高EEG反问题中的偶极子定位精度

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摘要

The EEG is a neurological diagnostic tool with high temporal resolution. However, when solving the EEG inverse problem, its localization accuracy is limited because of noise in measurements and available uncertainties of the conductivity value in the forward model evaluations. This paper proposes the reduced conductivity dependence (RCD) method for decreasing the localization error in EEG source analysis by limiting the propagation of the uncertain conductivity values to the solutions of the inverse problem. We redefine the traditional EEG cost function, and in contrast to previous approaches, we introduce a selection procedure of the EEG potentials. The selected potentials are, as low as possible, affected by the uncertainties of the conductivity when solving the inverse problem. We validate the methodology on the widely used three-shell spherical head model with a single electrical dipole and multiple dipoles as source model. The proposed RCD method enhances the source localization accuracy with a factor ranging between 2 and 4, dependent on the dipole location and the noise in measurements.
机译:EEG是具有高时间分辨率的神经系统诊断工具。但是,在解决脑电逆问题时,由于测量中的噪声和正向模型评估中电导率值的可用不确定性,其定位精度受到限制。本文提出了一种减少电导率依赖性(RCD)方法,通过将不确定的电导率值的传播限制在反问题的解中来减少EEG源分析中的定位误差。我们重新定义了传统的脑电图成本函数,并且与以前的方法相反,我们介绍了脑电图潜力的选择程序。解决反问题时,所选电势应尽可能低,受电导率不确定性的影响。我们在以单个电偶极子和多个偶极子为源模型的广泛使用的三壳球头模型上验证了该方法学。所提出的RCD方法可以根据偶极子位置和测量中的噪声,以2到4的范围提高源定位精度。

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