电阻抗断层成像
极地的
极坐标系
噪音(视频)
电阻抗
脑脊液
波形
电压
断层摄影术
电阻率层析成像
计算机科学
声学
电阻率和电导率
材料科学
物理
神经科学
电气工程
工程类
光学
数学
人工智能
心理学
图像(数学)
天文
几何学
作者
Xuetao Shi,Xiuzhen Dong,Wanjun Shuai,Fusheng You,Feng Fu,Ruigang Liu
标识
DOI:10.1088/0967-3334/27/11/002
摘要
Brain electrical impedance tomography (EIT) is a difficult task as brain tissues are enclosed by the skull of high resistance and cerebrospinal fluid (CSF) of low resistance, which makes internal resistivity information more difficult to extract. In order to seek a single source drive pattern that is more suitable for brain EIT, we built a more realistic experimental setting that simulates a head with the resistivity of the scalp, skull, CSF and brain, and compared the performance of adjacent, cross, polar and pseudo-polar drive patterns in terms of the boundary voltage dynamic range, independent measurement number, total boundary voltage changes and anti-noise performance based on it. The results demonstrate that the pseudo-polar drive pattern is optimal in all the aspects except for the dynamic range. The polar and cross drive patterns come next, and the adjacent drive pattern is the worst. Therefore, the pseudo-polar drive pattern should be chosen for brain EIT.
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