Magnetic resonance electrical impedance tomography (MREIT) for high-resolution conductivity imaging

被引:166
|
作者
Woo, Eung Je [1 ]
Seo, Jin Keun [2 ]
机构
[1] Kyung Hee Univ, Dept Biomed Engn, Seoul, South Korea
[2] Yonsei Univ, Dept Math, Seoul 120749, South Korea
关键词
MRI; EIT; MREIT; conductivity; injection current; magnetic flux density;
D O I
10.1088/0967-3334/29/10/R01
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Cross-sectional imaging of an electrical conductivity distribution inside the human body has been an active research goal in impedance imaging. By injecting current into an electrically conducting object through surface electrodes, we induce current density and voltage distributions. Based on the fact that these are determined by the conductivity distribution as well as the geometry of the object and the adopted electrode configuration, electrical impedance tomography (EIT) reconstructs cross-sectional conductivity images using measured current-voltage data on the surface. Unfortunately, there exist inherent technical difficulties in EIT. First, the relationship between the boundary current-voltage data and the internal conductivity distribution bears a nonlinearity and low sensitivity, and hence the inverse problem of recovering the conductivity distribution is ill posed. Second, it is difficult to obtain accurate information on the boundary geometry and electrode positions in practice, and the inverse problem is sensitive to thesemodeling errors as well as measurement artifacts and noise. These result in EIT images with a poor spatial resolution. In order to produce high-resolution conductivity images, magnetic resonance electrical impedance tomography (MREIT) has been lately developed. Noting that injection current produces a magnetic as well as electric field inside the imaging object, we can measure the induced internal magnetic flux density data using anMRI scanner. Utilization of the internal magnetic flux density is the key idea of MREIT to overcome the technical difficulties in EIT. Following original ideas on MREIT in early 1990s, there has been a rapid progress in its theory, algorithm and experimental techniques. The technique has now advanced to the stage of human experiments. Though it is still a few steps away from routine clinical use, its potential is high as a new impedance imaging modality providing conductivity images with a spatial resolution of a few millimeters or less. This paper reviews MREIT from the basics to the most recent research outcomes. Focusing on measurement techniques and experimental methods rather than mathematical issues, we summarize what has been done and what needs to be done. Suggestions for future research directions, possible applications in biomedicine, biology, chemistry and material science are discussed.
引用
收藏
页码:R1 / R26
页数:26
相关论文
共 50 条
  • [1] Electrical conductivity imaging by magnetic resonance electrical impedance tomography (MREIT)
    Oh, SH
    Han, JY
    Lee, SY
    Cho, MH
    Lee, BI
    Woo, EJ
    [J]. MAGNETIC RESONANCE IN MEDICINE, 2003, 50 (04) : 875 - 878
  • [2] Magnetic Resonance Electrical Impedance Tomography (MREIT): conductivity and current density imaging
    Seo, JK
    Kwon, O
    Woo, EJ
    [J]. SECOND INTERNATIONAL CONFERENCE ON INVERSE PROBLEMS: RECENT THEORETICAL DEVELOPMENTS AND NUMERICAL APPROACHES, 2004, 2005, 12 : 140 - 155
  • [3] Recent development of Magnetic Resonance Electrical Impedance Tomography toward high-resolution conductivity imaging
    Woo, Eung Je
    [J]. 2007 JOINT MEETING OF THE 6TH INTERNATIONAL SYMPOSIUM ON NONINVASIVE FUNCTIONAL SOURCE IMAGING OF THE BRAIN AND HEART AND THE INTERNATIONAL CONFERENCE ON FUNCTIONAL BIOMEDICAL IMAGING, 2007, : 346 - 349
  • [4] Magnetic Resonance Electrical Impedance Tomography (MREIT)
    Seo, Jin Keun
    Woo, Eung Je
    [J]. SIAM REVIEW, 2011, 53 (01) : 40 - 68
  • [5] Fast conductivity imaging in magnetic resonance electrical impedance tomography (MREIT) for RF ablation monitoring
    Kwon, Oh In
    Chauhan, Munish
    Kim, Hyung Joong
    Jeong, Woo Chul
    Wi, Hun
    Oh, Tong In
    Woo, Eung Je
    [J]. INTERNATIONAL JOURNAL OF HYPERTHERMIA, 2014, 30 (07) : 447 - 455
  • [6] Resolution and contrast in magnetic resonance electrical impedance tomography (MREIT) and its application to cancer imaging
    Muftuler, LT
    Hamamura, M
    Birgul, O
    Nalcioglu, O
    [J]. TECHNOLOGY IN CANCER RESEARCH & TREATMENT, 2004, 3 (06) : 599 - 609
  • [7] Electrical conductivity imaging using gradient Bz decomposition algorithm in magnetic resonance electrical impedance tomography (MREIT)
    Park, C
    Kwon, O
    Woo, EJ
    Seo, JK
    [J]. IEEE TRANSACTIONS ON MEDICAL IMAGING, 2004, 23 (03) : 388 - 394
  • [8] A Novel Conductivity Reconstruction Algorithm for Magnetic Resonance Electrical Impedance Tomography (MREIT)
    Wang, Yuyu
    Wang, Huixian
    Yang, Wenhui
    Hu, Xiaolin
    Song, Tao
    [J]. WORLD CONGRESS ON MEDICAL PHYSICS AND BIOMEDICAL ENGINEERING 2006, VOL 14, PTS 1-6, 2007, 14 : 3976 - 3979
  • [9] Animal and Human Imaging Experiments in Magnetic Resonance Electrical Impedance Tomography (MREIT)
    Woo, Eung Je
    [J]. 2009 ANNUAL INTERNATIONAL CONFERENCE OF THE IEEE ENGINEERING IN MEDICINE AND BIOLOGY SOCIETY, VOLS 1-20, 2009, : 3165 - 3168
  • [10] Denoising of Bz data for conductivity reconstruction in magnetic resonance electrical impedance tomography (MREIT)
    Jeon, Kiwan
    Lee, Chang-Ock
    [J]. MATHEMATICAL AND STATISTICAL METHODS FOR IMAGING, 2011, 548 : 85 - 100