<P>Enhancement of computational efficiency is highly critical for finite-element analysis of electric fields generated by transcranial direct-current stimulation (tDCS) in order to foster field-analysis-based customized brain stimulation in prac...
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https://www.riss.kr/link?id=A107709725
2018
-
SCOPUS,SCIE
학술저널
1-5(5쪽)
0
상세조회0
다운로드다국어 초록 (Multilingual Abstract)
<P>Enhancement of computational efficiency is highly critical for finite-element analysis of electric fields generated by transcranial direct-current stimulation (tDCS) in order to foster field-analysis-based customized brain stimulation in prac...
<P>Enhancement of computational efficiency is highly critical for finite-element analysis of electric fields generated by transcranial direct-current stimulation (tDCS) in order to foster field-analysis-based customized brain stimulation in practical scenarios. In this communication, we applied domain decomposition method (DDM) and adaptive mesh refinement method to the analysis of tDCS. DDM is likely to be particularly useful for tDCS field analysis problems with extracephalic reference electrodes. Our simulation results demonstrated that the DDM adopting the Schur complement method could reduce the overall computational time by 15% compared to the conventional single-domain analysis. On the other hand, to verify the enhancement of computational efficiency by adaptive mesh refinement, we used a realistic human head model with two sponge electrodes attached on the scalp surface. The distribution of numerical error estimated using an a posteriori error estimation method demonstrated that high errors were mostly concentrated on the edges and corners of the sponge electrodes. The overall solution accuracy could be remarkably enhanced by adding about 250 nodes around the high-error regions.</P>