1. Rappaport, C. M., , Ph.D. Thesis, Massachusetts Institute of Techonology, 1987.
doi:504 Gateway Time-out
2. Devita, V. T., S. Hellman, and S. A. Rosenberg, Cancer, Principles and Practice of Oncology, Lippincott, 1982.
doi:The server didn't respond in time.
3. Pace, O. T. and B. Cady, "Overal principles of cancer management, ment, 11. Surgery," Cancer: A Manual for Practitioners, American Cancer Society, Boston, 1978.
doi: Google Scholar
4. Holland, J. F. and E. Frei, Cancer Medicine, Lea and Rebiger, 1982.
5. Moosa, A. R., M. C. Robson, and S. C. Sahimoff (ed.), Comprehensive Text book of Oncology, Williams and Wilkins, 1986.
doi:10.1109/TBME.1984.325363
6. Hahn, G. M., "Hyperthermia for the engineer: A short biological primer," IEEE Biomedical Engineering, Vol. 31, No. 1, 3-8, January 1984.
doi:10.1109/PROC.1980.11593 Google Scholar
7. Short, J. G. and P. F. Turner, "Physical hyperthermia and cancer therapy," Proceedings of the IEEE, Vol. 68, No. 1, 133-142, January 1984.
doi:10.1109/TBME.1984.325238 Google Scholar
8. Strohbehn, J. W. and E. B. Douple, "Hyperthermia and cancer therapy: A review of biomedical engineering contributions and challenges," IEEE Trans. on Biomedical Engineering, Vol. 31, No. 12, 779-787, December 1984. Google Scholar
9. Westra, A. and U. C. Dewey, "Heat shock during the cell cycle of Chinese hamster cells vitro," International J. of Radiation Biology, Vol. 19, 467-477, 1971. Google Scholar
10. Palzer, R. J. and C. Heidelberger, "Studies on the hyperthermic killing on HeLa cells," Cancer Research, Vol. 33, 415-421, 1973. Google Scholar
11. Connor, W. G., E. W. Gerner, R. C. Miller, and M. L. M. Boone, "Prospects for hyperthermia in human cancer therapy, Part II," Radiation Biology, 197-503, May 1977. Google Scholar
12. Storm, F. K., ed., Hypertherznia in Cancer Therapy, Prentice-Hall, 1983.
doi:10.1007/978-1-4684-4193-2
13. Hahn, G. M., Hyperthermia and Cancer, Plenum Press, 1982.
14. Song, C. W., "Effects of local hyperthermia on blood flow and microenvironment: A review," Cancer Research, Vol. 44, 4721s-4730s, October 1984. Google Scholar
15. Thrall, D. E., "Clinical requirements for localized hyperthermia in the patient," Radiation and Environmental Biophysics, Vol. 17, 224-237, 1980. Google Scholar
16. Meyer, J. L., "The clinical efficacy of localized hyperthermia," Cancer Research, Vol. 44, 4745s-4751s, October 1984. Google Scholar
17. Lai, P. K., C. A. Cain, and H. S. Ducoff, "Interaction between 2450 MHz microwaves and ionizing radiation in tribolium confusum," IEEE Trans. Microwave Theory and Techniques, Vol. 26, No. 8, 530-534, August 1987. Google Scholar
18. Crile, G., "The effects of heat and radiation on cancer implanted in the feet of mice," Cancer Research, Vol. 23, 372-380, 1963. Google Scholar
19. Dewey, W. C., "Interaction of heat with radiation and chemotherapy," Cancer Research, Vol. 44, 47149-47209, October 1984. Google Scholar
20. Lele, P. P. and J. K. Parker, "Temperature distributions in tissues during local hyperthermia by stationary or steered beams of unfocussed or focussed ultrasound," British J. of Cancer, Vol. 45-supplement V, 108-121, 1982. Google Scholar
21. Cheung, A. Y. and A. Neyzari, "Deep local hyperthermia for cancer herapy: External electromagnetic and ultrasound techniques," Cancer Research, Vol. 44, 4736s-4744s, October 1984.
doi:10.1109/PROC.1972.8728 Google Scholar
22. Johnson, C. C. and A. W. Guy, "Nonionizing electromagnetic wave effects in biological materials and systems," Proceedings of the IEEE, Vol. 60, No. 6, 692-718, June 1972. Google Scholar
23. Guy, A. W., J. F. Lehmann, J. A. McDougall, and C. C. Sorenson, "Studies of therapeutic heating by electromagnetic energy," Thermal Problems in Biotechnology, 26-45, 1973.
doi:10.1109/PROC.1974.9385 Google Scholar
24. Guy, A. W., J. F. Lehmann, and J. B. Stonebridge, "Therapeutic applications of electromagnetic power," Proceedings of the IEEE, Vol. 62, No. 1, 55-75, January 1974.
doi:10.1109/PROC.1980.11589 Google Scholar
25. Schwan, H. P. and K. R. Foster, "RF-field interactions with biological systems: Electrical properties and biophysical mechanisms," Proceedings of the IEEE, Vol. 68, No. 1, 104-113, January 1980.
doi:10.1109/TMTT.1968.1127476 Google Scholar
26. Schwan, H. P, "Interaction of micrewave and radio frequency radiation with biological system," IEEE Trans. on Microwave Theory and Techniques, Vol. 19, No. 2, 146-152, February 1971.
doi:10.1080/16070658.1980.11689181 Google Scholar
27. Stuchly, M. A. and S. S. Stuchly, "Dielectric properties of biological substances --- tabulated," J. of Microwave Power, Vol. 15, No. 1, 19-24, January 1980. Google Scholar
28. Schwan, H. P., "Radiation biology, medical applications, and radiation hazards," Microwave Power Engineering, Vol. 2, 215-234, E. C. Okress, ed., Academic Press, New York, 1968.
doi:10.1109/TMTT.1968.1127484 Google Scholar
29. Guy, A. W., "Analyses of electromagnetic fields induced in biological tissyes by thermographic studies on equivalent phantom models," IEEE Trans. on Microwave Theory and Techniques, Vol. 19, No. 2, 205-214, February 1971. Google Scholar
30. Rappaport, C. M., "Localized hyperthermia with electromagnetic arrays and the leaky wave troughguide applicator," IEEE Trans. on Microwave Theory and Techniqhes, Vol. 34, No. 5, May 1986.
doi:10.1109/TMTT.1982.1131215 Google Scholar
31. Storm, F. K., R. S. Elliot, W. H. Harrison, and D. L. Morton, "Clinical RF hyperthermia by magnetic loop induction: A new approach to human cancer therapy," IEEE Trans. and Microwave Theory and Techniqzles, Vol. 30, No. 8, 1149-1157, August 1982.
doi:10.1109/TMTT.1968.1127486 Google Scholar
32. Ho, H. S., A. W. Guy, R. A. Sigelmann, and J. F. Lehmann, "Microwave heating of simulated human limbs by aperture sources," IEEE Trans. on Microwave Thoey and Techniques, Vol. 19, No. 2, 224-231, February 1971.
doi:10.1002/bem.2250030210 Google Scholar
33. Morita, N. and J. B. Andersen, "Near-field absorbtion in a circular cylinder from electric and magnetic line sources," Bioelectromagnetics, Vol. 3, No. 2, 253-274, 1982.
doi:10.1109/TMTT.1984.1132796 Google Scholar
34. Raskmark, P. and J. B. Andersen, "Focused electromagnetic heating of muscle tissue," IEEE Trans. on Microwave Theory and Techniques, Vol. 32, No. 8, 887-888, August 1984.
doi:10.1029/RS019i005p01195 Google Scholar
35. Andersen, J. B., "Focusing in lossy media," Radio Science, Vol. 19, No. 5, 1195-1198, September 1984. Google Scholar
36. Andersen, J. B., "Theoretical limitations on radiation into muscle tissue," J. of Hyperthermia, Vol. 1, No. 1, April 1985. Google Scholar
37. Gee, W., S. W. Lee, N. K. Bong, C. A. Cain, R. Mittra, and R. L. Magin, "Focused array hyperthermia applicator: Theory and experiment," IEEE Trans. on Biomedical Engineering, Vol. 31, No. 1, 3846, January 1984.
doi:10.1109/TMTT.1986.1133380 Google Scholar
38. Hand, J. W., J. L. Cheetham, and A. J. Hind, "Absorbed power distribution from coherent microwave arrays for localized hyperthermia," IEEE Trans. on Microwave Theory and Techniques, Vol. 34, No. 5, 484-489, May 1986.
doi:10.1109/TMTT.1986.1133381 Google Scholar
39. Loane, J., H. Ling, B. F. Wang, and S. W. Lee, "Experimental investigation of a retro-focusing microwave hyperthermia applicator: Conjugate-field matching scheme," IEEE Trans. on Microwave Theory and Techniques, Vol. 34, No. 5, 490-494, May 1986.
doi:10.1115/1.3426238 Google Scholar
40. Hannemann, R. J. and J. E. Robinson, "Thermal analysis and design considerations for a dual-beam microwave applicator for hyperthermia research," J. of Biomechanical Engineering, Vol. 101, 151-156, May 1979. Google Scholar
41. Melek, M., B. Eng, and A. P. Anderson, "Theoretical studies of localised tumor heating using focused microwave arrays," IEEE Proceedings, Vol. 127F, No. 4, 319-321, August 1980.
doi:10.1109/TMTT.1983.1131431 Google Scholar
42. Knoechel, R., "Capabilities of multiapplicator systems for focused hyperthermia," IEEE Trans. on Microwave Theory and Techniques, Vol. 31, No. 1, 70-73, January 1983. Google Scholar
43. Massoudi, H., C. H. Durney, and C. C. Johnson, "A geometrical optic and an exact solution for internal fields in and energy absorption by a cylindrical model of a man irradiated by an electromagnetic plane wave," Radio Science, Vol. 14, No. 65, 35-42, December 1976.
doi:10.1109/TMTT.1986.1133387 Google Scholar
44. Van Putten, M. H. P. M. and P. M. Van Den Berg, "A three-dimensional model for the `coaxial TEM' deep body hyperthermia through layered tissue," IEEE Trans. on Microwave Theory and Techniques, Vol. 34, No. 5, 526-531, May 1986.
doi:10.1109/TMTT.1986.1133386 Google Scholar
45. Sato, G., C. Shibata, S. Sekimukai, H. Wakabayoshi, K. Mitsuka, and K. Giga, "Phase controlled circular array heating equipment for deap-seated tumors: Preliminary experiments," IEEE Trans. on Microwave Theory and Techniques, Vol. 34, No. 5, 520-525, May 1986. Google Scholar
46. Cudd, P. A., A. P. Anderson, M. S. Hawley, and J. Conway, "Phase array design considerations for deep hyperthermia through layered tissue," IEEE Trans. on Microwave Theory and Techniques, Vol. 34, No. 5, 531-536, May 1986. Google Scholar
47. Wait, J. R., "Analysis of the radiation leakage for a four aperture phased-array applicator in hyperthermia therapy," IEEE Trans. on Microwave Theory and Techniques, Vol. 34, No. 5, 539-551, May 1986. Google Scholar
48. Arcangeli, G., P. P. Lombardini, G. A. Lovisolo, G. Marsiglia, and M. Piattelli, "Focusing of 915 MHz electromagnetic power on deep human tissues: A mathematical model study," IEEE Trans. on Biomedical Engineering, Vol. 31, No. 1, 47-52, January 1984. Google Scholar
49. Morita, N., T. Hamasaki, and N. Kumagai, "An optical excitation method in multi-applicator systems forming a hot zone inside the human body," IEEE Trans. on Microwave Theory and Techniques, Vol. 34, No. 5, 523-538, May 1986. Google Scholar
50. Jouvie, F., J. C. Bolomey, and G. Gaboriand, "Discussion of capabilities of microwave phased arrays for hyperthermia treatment of neck tumors," IEEE Trans. on Microwave Theory and Techniques, Vol. 34, No. 5, 495-501, May 1986. Google Scholar
51. Turner, P. F., "Hyperthermia and inhomogeneous tissue effects using an annular phased array," IEEE Trans. on Microwave Theory and Techniques, Vol. 32, No. 8, 874-882, August 1984. Google Scholar
52. Turner, P. F., "Regional hyperthermia with an annular phased array," IEEE Trans. Biomedical Engineering, Vol. 31, No. 1, 106-114, January 1984. Google Scholar
53. Gibbs, F. A., M. D. Sapozink, K. S. Gates, and J. R. Stewart, "Regional hyperthermia with an annular phased array in the experimental treatment of cancer: Report of work in progress with a technical emphasis," IEEE Trans. on Biomedical Engineering, Vol. 31, No. 1, 115-119, January 1984. Google Scholar
54. Hagmann, M. J., R. L. Levin, and P. F. Turner, "A comparison of the annular phased array to helical coil application for limb and torso hyperthermia," IEEE Trans. on Biomedical Engineering, Vol. 32, No. 11, 916-927, November 1985. Google Scholar
55. Turner, P. F., "Mini-annular phased array for limb hyperthermia," IEEE Trans. on Microwave Theory and Techniques, Vol. 34, No. 5, 508-513, May 1986. Google Scholar
56. Sathiaseelam, V., M. F. Iskander, G. C. W. Howard, and N. M. Blechen, "Theoretical analysis and clinical demonstration of the effects of power pattern control using the annular phased array hyperthermia system," IEEE Trans. on Microwave Theory and Techniques, Vol. 34, No. 5, 517-519, May 1986. Google Scholar
57. Isbander, M. F., P. F. Turner, J. B. DuBow, and J. Kao, "Two-dimensional technique to calculate the EM power deposition pattern in the human body," J. of Microwave Power, Vol. 17, No. 3, 1982. Google Scholar
58. Spiegel, R. J., "A review of numerical models for predicting the energy deposition and resultant thermal response of humans exposed to electromagnetic fields," IEEE Trans. on Microwave Theory and Techniques, Vol. 32, No. 8, 730-746, August 1984. Google Scholar
59. Weil, C. M., "Absorption characteristics of multilayered sphere mddels exposed to UHF/microwave radiation," IEEE Trans. on Biomedical Engineering, Vol. 22, No. 6, 468-476, November 1975. Google Scholar
60. Kritikos, H. N. and H. P. Schwan, "The distribution of heating potential inside lossy spheres," IEEE Trans. on Biomedical Engineering, Vol. 22, No. 6, 457-463, November 1975. Google Scholar
61. Kong, J. A., Electromagnetic Wave Theory, Wiley, 1986.
62. Hildebrand, F. B., Advanced Calculus for Applications, Prentice-Hall, 1976.
63. Abramowitz, M. and I. A. Stegun, Handbook of Mathematical Functions with Formulas, Graphs, and Mathematical Tables, Vol. 55, US Government Printing Office, 1972.
64. Stratton, J. A., Electromagnetic Theory, McGraw-Hill, 1941.
65. Andersen, J. B., , Private communication.
66. Christensen, D. A. and C. H. Durney, "Hyperthermia production for cancer therapy: A review of fundamentals and methods," J. of Microwave Power, Vol. 16, No. 2, 89-105, 1981. Google Scholar
67. Tsai, C. T., C. H. Durney, and D. A. Christensen, "Calculated power absorption for hyperthermia applications consisting of electric dipole arrays," J. of Microwave Power, Vol. 19, No. 1, 1-13, 1984. Google Scholar
68. Wait, J. R., "Focussed heating in cylindrical targets: Part 1," IEEE Trans. on Microwave Theory and Techniques, Vol. 33, No. 7, 647-649, July 1985. Google Scholar
69. Strohbehn, J. W. and R. B. Roemer, "A survey of computer simulations of hyperthermia treaments," IEEE Trans. on Biomedical Engineering, Vol. 68, No. 1, 136-149, January 1984. Google Scholar
70. Sultan, M. F. and R. Mittra, "An iterative moment method for analyzing the electromagnetic field distribution inside inhomogenous lossy dielectric objects," IEEE Trans. on Microwave Theory and Techniques, Vol. 33, No. 2, 163-168, February 1985. Google Scholar
71. Holt, F. S., "Application of geometric optics to the design analysis of microwave antennas," Tech. Report AFCRL-67-0501, Air Force Cambridge Research Laboratory, September 1967. Google Scholar