ERRORS DUE TO MEASURING VOLTAGE ON CURRENT-CARRYING ELECTRODES IN ELECTRIC-CURRENT COMPUTED-TOMOGRAPHY

被引:27
作者
CHENG, KS
SIMSKE, SJ
ISAACSON, D
NEWELL, JC
GISSER, DG
机构
[1] RENSSELAER POLYTECH INST,DEPT BIOMED ENGN,TROY,NY 12180
[2] RENSSELAER POLYTECH INST,DEPT MATH,TROY,NY 12180
[3] RENSSELAER POLYTECH INST,DEPT ELECT COMP & SYST ENGN,TROY,NY 12180
[4] RENSSELAER POLYTECH INST,DEPT COMP SCI,TROY,NY 12180
关键词
D O I
10.1109/10.43616
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Electric current computed tomography is a process for determining the distribution of electrical conductivity inside a body based upon measurements of voltage or current made at the body's surface. Most such systems use different electrodes for the application of current and the measurement of voltage. This paper shows that when a multiplicity of electrodes are attached to a body’s surface, the voltage data are most sensitive to changes in resistivity in the body's interior when voltages are measured from all electrodes, including those carrying current. This assertion is true despite the presence of significant levels of skin impedance at the electrodes. This conclusion is supported both theoretically and by experiment. Data were first taken using all electrodes for current and voltage. Then current was applied only at a pair of electrodes, with voltages measured on all other electrodes. We then constructed the second data set by calculation from the first. Targets could be detected with better signal-to-noise ratio by using the reconstructed data than by using the directly measured voltages on noncurrent-carrying electrodes. Images made from voltage data using only noncurrent-carrying electrodes had higher noise levels and were less able to accurately locate targets. We conclude that in multiple electrode systems for electric current computed tomography, current should be applied and voltage should be measured from all available electrodes. © 1990 IEEE
引用
收藏
页码:60 / 65
页数:6
相关论文
共 8 条
  • [1] APPLIED POTENTIAL TOMOGRAPHY
    BARBER, DC
    BROWN, BH
    [J]. JOURNAL OF PHYSICS E-SCIENTIFIC INSTRUMENTS, 1984, 17 (09): : 723 - 733
  • [2] GISSER D, 1988, IEEE T BIOMED ENG, V35, P828
  • [3] Gisser D G, 1987, Clin Phys Physiol Meas, V8 Suppl A, P39, DOI 10.1088/0143-0815/8/4A/005
  • [4] Theory and performance of an adaptive current tomography system
    Gisser, D.G.
    Isaacson, D.
    Newell, J.C.
    [J]. Clinical Physics and Physiological Measurement, 1988, 9 (SUPPL. A): : 35 - 41
  • [5] Hua P., 1987, Proceedings of the Ninth Annual Conference of the IEEE Engineering in Medicine and Biology Society (Cat. No.87CH2513-0), P1429
  • [6] ISAACSON D, 1986, IEEE T MED IMAGING, V5, P92
  • [7] COMPARING RECONSTRUCTION ALGORITHMS FOR ELECTRICAL-IMPEDANCE TOMOGRAPHY
    YORKEY, TJ
    WEBSTER, JG
    TOMPKINS, WJ
    [J]. IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1987, 34 (11) : 843 - 852
  • [8] YORKEY TJ, 1986, THESIS U WISCONSIN M