Spatial sampling and filtering of EEG with spline laplacians to estimate cortical potentials

被引:187
作者
Srinivasan, R
Nunez, PL
Tucker, DM
Silberstein, RB
Cadusch, PJ
机构
[1] ELECT GEODES INC,EUGENE,OR
[2] TULANE UNIV,DEPT BIOMED ENGN,BRAIN PHYS GRP,NEW ORLEANS,LA 70118
[3] SWINBURNE UNIV TECHNOL,CTR APPL NEUROSCI,MELBOURNE,VIC,AUSTRALIA
[4] SWINBURNE UNIV TECHNOL,DEPT PHYS,MELBOURNE,VIC,AUSTRALIA
[5] UNIV OREGON,DEPT PSYCHOL,INST COGNIT & DECIS SCI,EUGENE,OR 97403
关键词
spatial nyquist; laplacian; splines;
D O I
10.1007/BF01186911
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
The electroencephalogram (EEC) is recorded by sensors physically separated from the cortex by resistive skull tissue that smooths the potential field recorded at the scalp. This smoothing acts as a low-pass spatial filter that determines the spatial bandwidth, and thus the required spatial sampling density, of the scalp EEG. Although it is better appreciated in the time domain, the Nyquist frequency for adequate discrete sampling is evident in the spatial domain as well. A mathematical model of the low-pass spatial filtering of scalp potentials is developed, using a four concentric spheres (brain, CSF, skull, and scalp) model of the head and plausible estimates of the conductivity of each tissue layer. The surface Laplacian estimate of radial skull current density or cortical surface potential counteracts the low-pass filtering of scalp potentials by shifting the spatial spectrum of the EEG, producing a band-passed spatial signal that emphasizes local current sources. Simulations with the four spheres model and dense sensor arrays demonstrate that progressively more detail about cortical potential distribution is obtained as sampling is increased beyond 128 channels.
引用
收藏
页码:355 / 366
页数:12
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