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New Strategy for Finite Element Mesh Generation for Accurate Solutions of Electroencephalography Forward Problems

Authors
Lee, ChanyIm, Chang-Hwan
Issue Date
May-2019
Publisher
SPRINGER
Keywords
Electroencephalography; Finite element method; Error estimation; Adaptive mesh generation; Forward problem
Citation
BRAIN TOPOGRAPHY, v.32, no.3, pp.354 - 362
Indexed
SCIE
SCOPUS
Journal Title
BRAIN TOPOGRAPHY
Volume
32
Number
3
Start Page
354
End Page
362
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/14151
DOI
10.1007/s10548-018-0669-0
ISSN
0896-0267
Abstract
The finite element method (FEM) is a numerical method that is often used for solving electroencephalography (EEG) forward problems involving realistic head models. In this study, FEM solutions obtained using three different mesh structures, namely coarse, densely refined, and adaptively refined meshes, are compared. The simulation results showed that the accuracy of FEM solutions could be significantly enhanced by adding a small number of elements around regions with large estimated errors. Moreover, it was demonstrated that the adaptively refined regions were always near the current dipole sources, suggesting that selectively generating additional elements around the cortical surface might be a new promising strategy for more efficient FEM-based EEG forward analysis.
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