參考文獻 |
[1] F. Dickin and M. Wang, "Electrical resistance tomography for process applications," Measurement Science and Technology, no. 3, pp. 247-260, 1996.
[2] H. C. Yang, "The Design and Applications of Eddy-Current Nondestructive Inspection System," Department of Electrical Engineering National Cheng Kung University, R.O.C., Dissertation for Doctor of Philosophy, July 2003.
[3] H. Zhiyao, W. Baoliang, and L. Haiqing, "Application of electrical capacitance tomography to the void fraction measurement of two-phase flow," IEEE Transactions on Instrumentation and Measurement, vol. 52, no. 1, pp. 7-12, 2003.
[4] N. G. Gencer, M. Kuzuoglu, and Y. Z. Ider, "Electrical impedance tomography using induced currents," IEEE Transactions on Medical Imaging, vol. 13, no. 2, pp. 338-350, 1994.
[5] P. Tarjan and R. Mcfee, "Electrodeless measurements of the effective resistivityof the human torso and head by magnetic induction," IEEE Transactions on Biomed. Eng., vol. 15, pp. 266-278, October 1968.
[6] H. W. Ko, D. G. Smith, and J. P. Skura, "In-vivo measurement of brain edema with the magnetic bio-impedance method," 18th Annual International Conference of the IEEE Engineering in Medicine and Biology Amsterdam, pp. 1938-1939, 1996.
[7] S. al-Zeibak and N. H. Saunders, "A feasibility study of in vivo electromagnetic imaging," Physics in medicine and biology, vol. 38, pp. 151-160, 1993.
[8] H. Griffiths, W. R. Stewart, and W. Gough, "Magnetic induction tomography. A measuring system for biological tissues," Ann. N Y Acad. Sci., vol. 873, pp. 335-345, 1999.
[9] H. Scharfetter, H. K. Lackner, and J. Rosell, "Magnetic induction tomography: hardware for multi-frequency measurements in biological tissues," Physiological Measurement, vol. 22, no. 1, pp. 131-146, 2001.
[10] B. U. Karbeyaz and N. G. Gencer, "Electrical conductivity imaging via contactless measurements: an experimental study," Medical Imaging, IEEE Transactions on, vol. 22, no. 5, pp. 627-635, 2003.
[11] C. H. Riedel, M. Keppelen, S. Nani, R. D. Merges, and O. Dossel, "Planar system for magnetic induction conductivity measurement using a sensor matrix," Physiological Measurement, no. 1, pp. 403-411, 2004.
[12] N. G. Gencer and M. N. Tek, "Forward problem solution for electrical conductivity imaging via contactless measurements," Physics in Medicine and Biology, vol. 44, no. 4, pp. 927-940, 1999.
[13] S. Grimnes and O. G. Martinsen, "Bioimpedance and bioelectricity basics," ACADEMIC PRESS, New York, 2000.
[14] R. Pethig, "Dielectric properties of biological materials:biophysical and medical application," IEEE Trans. Biomed. Eng., no. EI-19, pp. 453-474, 1984.
[15] J. G. Webster, "Electrical Impedance Tomography," Institute of Physics Publishing, March 1990.
[16] Pethig R., "Dielectric and Electric Properties of Biological Materials," John Wiley & Sons, 1979.
[17] E. Zheng, S. Shao, and J.G. Webster, "Impedance of skeletal muscle from 1Hz to 1MHz," IEEE Trans. Biomed. Eng., pp. 649-651, 1984.
[18] D. K.Cheng, "Field and Wave Electromagnetics, " Pearson Education Taiwan Ltd., 1989.
[19] D. J. Hagemaier, "Fundamental of eddy current testing, " The American Society For Nondestructive Testing, 1990.
[20] N. G. Gencer and M. N. Tek, "Electrical conductivity imaging via contactless measurements," IEEE Transactions on Medical Imaging, vol. 18, no. 7, pp. 617-627, 1999.
[21] C. H. Igney, S. Watson, R. J. Williams, H. Griffiths, and O. Dossel, "Design and performance of a planar-array MIT system with normal sensor alignment," Physiological Measurement, no. 2, p. S263-S278, 2005.
[22] Z. Z. Yu and A. J. Peyton, "Developement of sensor arrays for electromagnetic inductive tomography: compensation of large background signal vailues ," Trans. Inst. M. C., vol. 20, no. 4, pp. 195-202, 1998.
[23] H. Scharfetter, R. Merwa, and K. Pilz, "A new type of gradiometer for the receiving circuit of magnetic induction tomography (MIT)," Physiological Measurement, vol. 26, no. 2, p. S307-S318, 2005.
[24] S. Watson, A. Morris, R. J. Williams, H. Griffiths, and W. Gough, "A primary field compensation scheme for planar array magnetic induction tomography," Physiological Measurement, no. 1, pp. 271-279, 2004.
[25] M. Min, O. Martens, and T. Parve, "Lock-in measurement of bio-impedance variations," Measurement, vol. 27, pp. 21-28, 2000.
[26] M. L. Meade, "Lock-in amplifiers : principles and applications, " Inspec/Iee, July 1983.
[27] B. Ulker and N. G. Gencer, "Implementation of a data acquisition system for contactless conductivity imaging," IEEE engineering in medicine and Biology Society, September-October, 2002.
[28] W. H. Yang, "Application of contactless impedance image in biologic tissue," Department of Electrical Engineering National Central University, R.O.C., Thesis for Master Degree, June 2005.
[29] P. C. Shih, "Design of the movable electrical impedance tomography system," Department of Electrical Engineering National Central University, R.O.C., Thesis for Master Degree, June 2005.
[30] J. C. Faes, H. A. van der Meij, J. C. de Munck, and R. M. Heethaar, "The electric resistivity of human tissues (100 Hz-10M Hz): a meta-analysis of review studies," Physiological Measurement, vol. 20, no. 4, p. R1, 1999. |