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使用双峰截断奇异值分解伪逆对脑电图(EEG)和脑磁图(MEG)测量中的神经源进行差异表征。

Differential characterization of neural sources with the bimodal truncated SVD pseudo-inverse for EEG and MEG measurements.

作者信息

Gençer N G, Williamson S J

机构信息

Electrical and Electronics Engineering Department, Middle East Technical University, Balgat Ankara, Turkey.

出版信息

IEEE Trans Biomed Eng. 1998 Jul;45(7):827-38. doi: 10.1109/10.686790.

Abstract

A method for obtaining a practical inverse for the distribution of neural activity in the human cerebral cortex is developed for electric, magnetic, and bimodal data to exploit their complementary aspects. Intracellular current is represented by current dipoles uniformly distributed on two parallel sulci joined by a gyrus. Linear systems of equations relate electric, magnetic, and bimodal data to unknown dipole moments. The corresponding lead-field matrices are characterized by singular value decomposition (SVD). The optimal reference electrode location for electric data is chosen on the basis of the decay behavior of the singular values. The singular values of these matrices show better decay behavior with increasing number of measurements, however, that property is useful depending on the noise in the measurements. The truncated SVD pseudo-inverse is used to control noise artifacts in the reconstructed images. Simulations for single-dipole sources at different depths reveal the relative contributions of electric and magnetic measures. For realistic noise levels the performance of both unimodal and bimodal systems do not improve with an increase in the number of measurements beyond approximately 100. Bimodal image reconstructions are generally superior to unimodal ones in finding the center of activity.

摘要

为利用脑电、脑磁和双模态数据的互补特性,开发了一种获取人类大脑皮质神经活动分布实用逆解的方法。细胞内电流由均匀分布在由脑回相连的两条平行脑沟上的电流偶极子表示。线性方程组将脑电、脑磁和双模态数据与未知偶极矩联系起来。相应的导联场矩阵通过奇异值分解(SVD)进行表征。基于奇异值的衰减特性选择脑电数据的最优参考电极位置。这些矩阵的奇异值随着测量次数的增加呈现出更好的衰减特性,不过,这一特性根据测量中的噪声情况而有用。截断奇异值分解伪逆用于控制重建图像中的噪声伪迹。对不同深度的单偶极子源进行模拟,揭示了脑电和脑磁测量的相对贡献。对于实际噪声水平,当测量次数超过约100次时,单模态和双模态系统的性能都不会随着测量次数的增加而提高。在寻找活动中心方面,双模态图像重建通常优于单模态重建。

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