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Comparison and Improvement of Inverse Techniques for MEG Source Connectivity Network Reconstruction

机译:MEG源连通性网络重构逆向技术的比较与改进

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摘要

Recent studies on bio-electromagnetic inverse problems have shown that a satisfactory understanding of source mechanisms requires to perform source connectivity analyses. This paper focuses on the comparison of inverse techniques for reconstructing the source connectivity network. The results confirm that the noise effect for linear estimation technique is direct, while, for spatial filtering technique the effect is indirect. Linear estimation is advantageous for the connectivity reconstruction of high quality magnetoencephalography (MEG) data, while, the benefit for the case of spatial filter is low SNR environments. This paper also proposes a modified spatial filtering method to improve the source connectivity reconstruction by using the correlation gram matrix. The results show that the proposed method can increase the reconstruction accuracy, decrease the error fluctuation and enhance the representation for profiles of the original source connectivity network.
机译:关于生物电磁逆问题的最新研究表明,对源机制的满意理解需要执行源连接性分析。本文着重比较了用于重建源连接网络的逆向技术。结果证实,线性估计技术的噪声效应是直接的,而空间滤波技术的噪声效应是间接的。线性估计有利于高质量脑磁图(MEG)数据的连通性重建,而空间滤波器的好处是低SNR环境。本文还提出了一种改进的空间滤波方法,以利用相关语法矩阵改进源连接的重建。结果表明,该方法可以提高重建精度,减少误差波动,增强原始源连接网络的轮廓表示。

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