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Localization of brain electrical activity via linearly constrained minimum variance spatial filtering

机译:通过线性约束最小方差空间滤波对脑电活动进行定位

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摘要

A spatial filtering method for localizing sources of brain electrical activity from surface recordings is described and analyzed. The spatial filters are implemented as a weighted sum of the data recorded at different sites. The weights are chosen to minimize the filter output power subject to a linear constraint. The linear constraint forces the filter to pass brain electrical activity from a specified location, while the power minimization attenuates activity originating at other locations. The estimated output power as a function of location is normalized by the estimated noise power as a function of location to obtain a neural activity index map. Locations of source activity correspond to maxima in the neural activity index map. The method does not require any prior assumptions about the number of active sources of their geometry because it exploits the spatial covariance of the source electrical activity. This paper presents a development and analysis of the method and explores its sensitivity to deviations between actual and assumed data models. The effect on the algorithm of covariance matrix estimation, correlation between sources, and choice of reference is discussed. Simulated and measured data is used to illustrate the efficacy of the approach.
机译:描述和分析了一种用于从表面记录中定位大脑电活动来源的空间滤波方法。空间滤波器被实现为在不同站点记录的数据的加权和。选择权重以使受到线性约束的滤波器输出功率最小。线性约束迫使过滤器从指定位置传递大脑的电活动,而功率最小化则削弱源自其他位置的活动。通过将估计的噪声功率作为位置的函数对作为位置的函数的估计输出功率进行归一化,以获得神经活动指数图。源活动的位置对应于神经活动指数图中的最大值。由于该方法利用了源电活动的空间协方差,因此不需要对其几何形状的有源源的数量进行任何先验假设。本文介绍了该方法的发展和分析,并探讨了其对实际数据模型和假定数据模型之间偏差的敏感性。讨论了协方差矩阵估计算法,源之间的相关性以及参考选择对算法的影响。仿真和测量数据用于说明该方法的有效性。

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