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By John G. Webster (Editor)

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C. Barber In vivo imaging of cardiac related impedance changes, IEEE Eng. Med. Biol. , 8 (1): 39–45, 1989. 54. K. S. Cole Membranes, Ions and Impulses, Ions and Impulses, Berkeley: Univ. California Press, 1972. 55. M. Gheorghiu E. Gersing E. Gheoghiu Quantitative analysis of impedance spectra of organs during ischemia, Proc. 10th Int. Conf. Electrical Bio-impedance, 1998, pp. 73–76. 56. H. Schafer, ¨ et al. Dielectric properties of skeletal muscle during ischemia in the frequency range from 50 to 200 Hz, Proc.

E. Baker Applications the impedance technique to the respiratory system, IEEE Eng. Med. Biol. , 8 (1): 50–52, 1989. 47. P. L. M. Kerkhof Beat-to-beat analysis of high-fidelity signals obtained from the left ventricle and aorta in chronically instrumented dogs, Automedica, 7: 83–90, 1986. 48. I. Giaever C. R. Keese A morphological biosensor for mammalian cells, Nature, 366: 591–592, 1993. 49. R. Plonsey R. C. Barr The four-electrode resistivity technique as applied to cardiac muscle, IEEE Trans. Biomed.

C. Spinelli Intracardiac measurements with the impedance technique, IEEE Eng. Med. Biol. , 8 (1): 27–34, 1989. 32. G. Murand J Baan Computation of the input impedance of a catheter for cardiac volumetry, IEEE Trans. Biomed. , 31: 448–453, 1984. 33. J. Baan et al. Continuous stroke volume and cardiac output from intraventricular dimensions obtained with impedance catheter, Cardiovasc. , 15: 328–334, 1981. 34. J. Baan et al. Ventricular volume measured from intracardiac dimensions with impedance catheter: Theoretical and experimental aspects, in T.

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