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A data-driven model of the generation of human EEG based on a spatially distributed stochastic wave equation

机译:基于空间分布随机波动方程的人类脑电数据驱动模型

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摘要

We discuss a model for the dynamics of the primary current density vector field within the grey matter of human brain. The model is based on a linear damped wave equation, driven by a stochastic term. By employing a realistically shaped average brain model and an estimate of the matrix which maps the primary currents distributed over grey matter to the electric potentials at the surface of the head, the model can be put into relation with recordings of the electroencephalogram (EEG). Through this step it becomes possible to employ EEG recordings for the purpose of estimating the primary current density vector field, i.e. finding a solution of the inverse problem of EEG generation. As a technique for inferring the unobserved high-dimensional primary current density field from EEG data of much lower dimension, a linear state space modelling approach is suggested, based on a generalisation of Kalman filtering, in combination with maximum-likelihood parameter estimation. The resulting algorithm for estimating dynamical solutions of the EEG inverse problem is applied to the task of localising the source of an epileptic spike from a clinical EEG data set; for comparison, we apply to the same task also a non-dynamical standard algorithm.
机译:我们讨论了人脑灰质内主要电流密度矢量场动力学的模型。该模型基于由随机项驱动的线性阻尼波方程。通过采用逼真的形状的平均大脑模型和矩阵估计,该矩阵将分布在灰质上的初级电流映射到头部表面的电势,可以将该模型与脑电图(EEG)记录联系起来。通过该步骤,可以使用EEG记录来估计初级电流密度矢量场,即找到EEG产生反问题的解决方案。作为一种从较低维数的EEG数据推断未观测到的高维一次电流密度场的技术,提出了一种基于卡尔曼滤波的广义线性状态空间建模方法,并结合最大似然参数估计。所得的用于估计EEG反问题动力解决方案的算法被应用于从临床EEG数据集中定位癫痫发作来源的任务。为了进行比较,我们将非动态标准算法应用于同一任务。

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