Li Jing, Wang Kun, Zhu Shanan, He Bin
College of Electrical Engineering, Zhejiang University, Hangzhou 310027, People's Republic of China.
J Neural Eng. 2007 Sep;4(3):197-204. doi: 10.1088/1741-2560/4/3/004. Epub 2007 Apr 20.
Holes in the skull and the scalp are associated with intracranial monitoring procedures. The purpose of the present study is to evaluate the effects of holes on extracranial electroencephalogram (EEG) and intracranial electrocorticogram (ECoG) recordings. The finite difference method (FDM) was used to model the head volume conductor with a hole of varying size. A current dipole was used to simulate the brain electrical activity with varying locations within the brain. The effects of the holes were assessed by comparing the forward potential distributions with and without a hole. The present computer simulation results indicate that the effect of a hole on the scalp EEG and ECoG recordings strongly depends on the dipole location and orientation. For a superficial radial dipole located under a hole of radius ranging from 5 mm to 40 mm, the relative error (RE) varies from 0.99% to 93.07% for the EEG and from 0.025% to 16.72% for the ECoG. The correlation coefficient (CC) varies from 99.99% to 21.1% and from 100% to 99.75% for the EEG and EcoG, respectively. For radial dipoles, the strongest effect on the EEG and ECoG occurs when the dipole is located below the center of the hole, while for tangential dipoles, the strongest effect occurs when the dipole is located below the border of the hole. The effect of a hole on the EEG is much larger than upon the ECoG.
颅骨和头皮上的孔洞与颅内监测程序相关。本研究的目的是评估这些孔洞对颅外脑电图(EEG)和颅内皮质脑电图(ECoG)记录的影响。采用有限差分法(FDM)对具有不同尺寸孔洞的头部容积导体进行建模。使用电流偶极子来模拟大脑内不同位置的脑电活动。通过比较有孔洞和无孔洞情况下的正向电位分布来评估孔洞的影响。当前的计算机模拟结果表明,孔洞对头皮EEG和ECoG记录的影响很大程度上取决于偶极子的位置和方向。对于位于半径从5毫米到40毫米孔洞下方的浅表径向偶极子,EEG的相对误差(RE)从0.99%到93.07%不等,ECoG的相对误差从0.025%到16.72%不等。EEG的相关系数(CC)分别从99.99%到21.1%,ECoG的相关系数从100%到99.75%。对于径向偶极子,当偶极子位于孔洞中心下方时,对EEG和ECoG的影响最强,而对于切向偶极子,当偶极子位于孔洞边界下方时,影响最强。孔洞对EEG的影响比对ECoG的影响大得多。