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Multi-way space-time-wave-vector analysis for EEG source separation

delete2012-04-01
delete27
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H
Hanna Becker
P
Pierre Comon
L
Laurent Albera
M
Martin Haardt *
I
Isabelle Merlet
DOI:10.1016/j.sigpro.2011.10.014delete
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摘要

摘要

En 中文
For the source analysis of electroencephalographic (EEG) data, both equivalent dipole models and more realistic distributed source models are employed. Several authors have shown that the canonical polyadic decomposition (also called ParaFac) of space-time-frequency (STF) data can be used to fit equivalent dipoles to the electric potential data. In this paper we propose a new multi-way approach based on space-time-wave-vector (STWV) data obtained by a 3D local Fourier transform over space accomplished on the measured data. This method can be seen as a preprocessing step that separates the sources, reduces noise as well as interference and extracts the source time signals. The results can further be used to localize either equivalent dipoles or distributed sources increasing the performance of conventional source localization techniques like, for example, LORETA. Moreover, we propose a new, iterative source localization algorithm, called Binary Coefficient Matching Pursuit (BCMP), which is based on a realistic distributed source model. Computer simulations are used to examine the performance of the STWV analysis in comparison to the STF technique for equivalent dipole fitting and to evaluate the efficiency of the STWV approach in combination with LORETA and BCMP, which leads to better results in case of the considered distributed source scenarios. (C) 2011 Elsevier B.V. All rights reserved.
Keyword:
EEG
CanDecomp/ParaFac
Canonical polyadic decomposition
Source localization
LORETA
Space-time-frequency/space-time-wave-vector analysis
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期刊

Signal Processing 封面图
Signal Processing
IF:
3.6
论文数:
10.0K
被引数:
1.7W

机构

C
centre national de la recherche scientifique (cnrs)
学者数:
24.5W
论文数: 18.2W
被引数: 279
T
Technische Universitat Ilmenau
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论文数: 2.0K
被引数: 20
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