|
[1] B. P. Donaldson, M. Fattouche, and R. W. Donaldson, "Characterization of in-building UHF wireless radio communication channels using spectral energy measurements," IEEE Transactions on Antennas and Propagation vol. 44, pp. 80-86, January 1996. [2] J. Koh, Y. Cho, and T. K. Sarkar, "Reconstruction of non-minimum phase function from only amplitude data," Microwave and Optical Technology Letters, vol. 35, no. 3, pp. 212-216, November 2002. [3] I. Páez, S. Loredo, L. Valle, and R. P. Torres, "Experimental estimation of wideband radio channel parameters with the use of a spectrum analyzer and the Hilbert transform," Microwave and Optical Technology Letters, vol. 34, no. 5, pp. 393-397, September 2002. [4] T. K. Sarkar, "Generation of non-minimum phase from amplitude-only data," IEEE Transactions on Microwave Theory Technology, vol. 46, no. 8, pp. 1079-1084, August 1998. [5] A. E. Yagle and A. E. Bell, "One- and two-dimensional minimum and non-minimum phase retrieval by solving linear systems of equations," IEEE Transactions on Signal Processing, vol. 47, no. 11, pp. 2978-2989, November 1999. [6] A. Bayram, "A Study of Indoor Ultra-Wideband Propagation Measurement and Characterization," M.S. Thesis, Department of Electrical and Computer Engineering, Virginia Tech, May 2004. [7] D. Cassioli, M. Z. Win, and A. F. Molisch, "The ultra-wide bandwidth indoor channel: from statistical model to simulations," IEEE Journal on Selected Areas in Communications, vol. 20, no. 6, pp. 1247-1257, August 2002. [8] M. Z. Win and R. A. Scholtz, "Characterization of ultra-wide bandwidth wireless indoor channels: A communication-theoretic view," IEEE Journal on Selected Areas in Communications, vol. 20, no. 9, pp. 1613-1627, December 2002. [9] R. M. Buehrer, A. Safaai-Jazi, W. A. Davis, and D. S. Sweeney, "Ultra-Wideband Propagation Measurements and Modeling," Final Report for DARPA-NETEX Program, Mobil and Portable Radio Research Group, Virginia Tech, January 31, 2004. [10] A. H. Muquibel, A. Safaai-Jazi, A. M. Attiya, A. Bayram, and S. M. Riad, "Measurement and characterization of indoor ultra-wideband propagation," Proc. 2003 IEEE Conference on Ultra Wideband Systems and Technologies, pp. 295-299, November 16-19, 2003. [11] A. H. Muquaible, "Characterization of Ultra Wideband Communication Channels," Ph.D. dissertation, The Bradley Department of Electrical and Computer Engineering Virginia Polytechnic Institute and State University, March 2003. [12] R. M. Buehrer, W. A. Davis, A. Safaai-Jazi, and D. Sweeney, "Characterization of the ultra-wideband channel," Proc. 2003 IEEE Conference on Ultra Wideband Systems and Technologies, pp. 26-31, November 16-19, 2003. [13] A. H. Muquibel and A. Safaai-Jazi, "A new formulation for characterization of materials based on measured insertion transfer function," IEEE Transactions on Microwave Theory and Techniques, vol. 51, no. 8, pp. 1946-1951, August 2003. [14] C. Yang, B. Wu, and C. Ko, "A ray-tracing method for modeling indoor wave propagation and penetration," IEEE Transactions on Antennas and Propagation, vol. 46, no. 6, pp. 907-919, June 1999. [15] J. H. Trang, W. R. Cheng, and B. J. Hsu, "Three-dimensional modeling of 900-MHz and 2.44-GHz radio propagation in corridors," IEEE Transactions on Vehicular Technology, vol. 46, no. 2, pp. 519-527, May 1997. [16] U. Dersch and E. Zollinger, "Propagation mechanisms in microcell and indoor environments," IEEE Transactions on Vehicular Technology, vol. 43, no. 4, pp. 1058-1066, November 1994. [17] G. E. Athanasiadou and A. R. Nix, "A novel 3-D indoor ray-tracing propagation model: The path generator and evaluation of narrow-band and wide-band prediction," IEEE Transactions on Vehicular Technology, vol. 49, no. 4, pp. 1152-1168, July 2000. [18] V. Degli-Esposti, C. Lombardi, C. Passerini, and G. Riva, "Wideband measurement and ray tracing of the 1900-MHz indoor propagation channel: Comparison criteria and results," IEEE Transactions on Antennas and Propagation, vol. 49, no. 7, pp. 1101-1110, July 2001. [19] T. Imai and T. Fujii, "Fast algorithm for indoor microcell area prediction system using ray-tracing method," Electronics and Communication in Japan, Part 1, vol. 85, no. 6, pp. 41-52, 2002. [20] Z. Zhang, R. K. Sorensen, Z. Yun, M. F. Iskander, and J. F. Harvey, "A ray-tracing approach for indoor/outdoor propagation through window structure," IEEE Transactions on Antennas and Propagation, vol. 50, no. 5, pp. 742-748, May 2002. [21] F. S. de Adana, O. G. Blanco, I. G. Diego, J. P. Arriage, and M. F. Catedra, "Propagation model based on ray tracing for design of personal communication system in indoor environments," IEEE Transactions on Vehicular Technology, vol. 49, no. 6, pp. 2105-2112, November 2000. [22] S. Chen and S. Jeng, "An SBR/image approach for radio wave propagation in indoor environments with metallic furniture," IEEE Transactions on Antennas and Propagation, vol. 45, no. 1, pp. 98-106, January 1997. [23] Y. Wang, S. Safavi-Naeini, and S. K. Chaudhuri, "A hybrid technique base on combining ray tracing and FDTD methods for site-specific modeling of indoor radio wave propagation," IEEETransactions on Antennas and Propagation, vol. 48, no. 5, pp. 743-754, May 2000. [24] G. A. Schiavone, P. Wahid, R. Palaniappan, J. Tracy, and T. Dere, "Analysis of ultra-wide band signal propagation in an indoor environment," Microwave and Optical Technology Letters, vol. 36, no. 1, pp. 13-15, January 2003. [25] J. B. Keller, "Geometrical theory of diffraction," Journal of the Optical Society of America, vol. 52, pp. 116-130, 1962. [26] A. M. Attiya and A. Safaai-Jazi, "Simulation of Ultra-Wideband Indoor Propagation," Microwave and Optical Technology Letters, vol. 42, no. 2, pp. 103-108, July 2004. |
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