A new magnetic resonance electrical impedance tomography (MREIT) algorithm: the RSM-MREIT algorithm with applications to estimation of human head conductivity

被引:70
作者
Gao, Nuo
Zhu, S. A.
He, Bin
机构
[1] Zhejiang Univ, Coll Elect Engn, Hangzhou 130027, Zhejiang Prov, Peoples R China
[2] Univ Minnesota, Dept Biomed Engn, Minneapolis, MN 55455 USA
关键词
D O I
10.1088/0031-9155/51/12/005
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
We have developed a new magnetic resonance electrical impedance tomography (MREIT) algorithm, the RSM-MREIT algorithm, for noninvasive imaging of the electrical conductivity distribution using only one component of magnetic flux density. The proposed RSM-MREIT algorithm uses the response surface methodology (RSM) algorithm for optimizing the conductivity distribution through minimizing the errors between the measured and calculated magnetic flux densities. A series of computer simulations has been conducted to assess the performance of the proposed RSM-MREIT algorithm to estimate electrical conductivity values of the scalp, the skull and the brain tissue, in a three-shell piecewise homogeneous head model. Computer simulation studies were conducted in both a spherical and realistic-geometry head model with a single variable (the brain-to-skull conductivity ratio) and three variables (the conductivity of the brain, the skull, and the scalp). The relative error between the target and estimated head conductivity values was less than 12% for both the single-variable and three-variable simulations. These promising simulation results demonstrate the feasibility of the proposed RSM-MREIT algorithm in estimating electrical conductivity values in a piecewise homogeneous head model of the human head, and suggest that the RSM-MREIT algorithm merits further investigation.
引用
收藏
页码:3067 / 3083
页数:17
相关论文
共 36 条
[1]   Experimental results for 2D magnetic resonance electrical impedance tomography (MR-EIT) using magnetic flux density in one direction [J].
Birgül, Ö ;
Eyüboglu, BM ;
Ider, YZ .
PHYSICS IN MEDICINE AND BIOLOGY, 2003, 48 (21) :3485-3504
[2]  
Birgül Ö, 2003, PHYS MED BIOL, V48, P653, DOI 10.1088/0031-9155/48/5/307
[3]  
Eyuboglu B. M., 1998, Turkish Journal Electrical Engineering and Computer Sciences, Elektrik, V6, P201
[4]  
EYUBOGLU BM, 2001, ICEBI 11 INT C EL BI, P409
[5]  
Fu M. C., 1994, Annals of Operations Research, V53, P199, DOI 10.1007/BF02136830
[6]   Estimation of electrical conductivity distribution within the human head from magnetic flux density measurement [J].
Gao, N ;
Zhu, SA ;
He, B .
PHYSICS IN MEDICINE AND BIOLOGY, 2005, 50 (11) :2675-2687
[7]   ELECTRIC-DIPOLE TRACING IN THE BRAIN BY MEANS OF THE BOUNDARY ELEMENT METHOD AND ITS ACCURACY [J].
HE, B ;
MUSHA, T ;
OKAMOTO, Y ;
HOMMA, S ;
NAKAJIMA, Y ;
SATO, T .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1987, 34 (06) :406-414
[8]   Estimating cortical potentials from scalp EEG's in a realistically shaped inhomogeneous head model by means of the boundary element method [J].
He, B ;
Wang, YH ;
Wu, DS .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1999, 46 (10) :1264-1268
[9]   Boundary element method-based cortical potential imaging of somatosensory evoked potentials using subjects' magnetic resonance images [J].
He, B ;
Zhang, X ;
Lian, J ;
Sasaki, H ;
Wu, D ;
Towle, VL .
NEUROIMAGE, 2002, 16 (03) :564-576
[10]  
He B, 2001, HUM BRAIN MAPP, V12, P120, DOI 10.1002/1097-0193(200102)12:2<120::AID-HBM1009>3.0.CO