60GHz Channel Characterizations and Modeling†‡
Su-khiong (sk) Yong Ph.D.
Marvell Semiconductor Inc., Santa Clara, CA, USA
Search for more papers by this authorSu-khiong (sk) Yong Ph.D.
Marvell Semiconductor Inc., Santa Clara, CA, USA
Search for more papers by this authorSu-Khiong (SK) Yong Ph.D.
Marvell Semiconductor Inc., Santa Clara, CA, USA
Search for more papers by this authorPengfei Xia Ph.D., IEEE Senior Member
Broadcom Corp., San Diego, CA, USA
Search for more papers by this authorAlberto Valdes-Garcia Ph.D.
Communication and Computation Subsystems, IBM Research Yorktown Heights, NY, United States
Search for more papers by this authorPortions of this chapter are reproduced with permission from S.K. Yong, “TG3c Channel Modelling Sub-Committee Final Report,” © March 2007 and A. Maltsev, “Channel Models for 60 GHz WLAN Systems,” IEEE © 2010.
This work was done when the author was affiliated with Samsung Electronics.
Summary
This chapter contains sections titled:
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Introduction to Wireless Channel Modeling
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Modeling Approach and Classification of Channel Model
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Channel Characterization
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Industry Standard Channel Models
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Summary
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References
References
- Erceg, V. (2004) TGn Channel Models. IEEE 802.11-03-940-04, May.
- Yong, S.K (2007) TG3c Channel Modeling Sub-committee Final Report IEEE 802.15-07-0584-01-003c, March.
- Maltsev, A. (2009) Channel models for 60 GHz WLAN systems. IEEE 802.11-09-0334-03ad, July.
- 3rd Generation Partnership Project, Technical Specification Group Radio Access Network (2007) Spatial channel model for Multiple Input Multiple Output (MIMO) simulations (Release 7.0). 3GPP TR 25.996 V7.0.0, June.
- Steinbauer, M., Molisch, A.F and Bonek, E. (2001) The double-directional radio channel. IEEE Communications Magazine, 43(4).
- Fleury, B.H and Leuthold, P.E (1996) Radiowave propagation in mobile communications: an overview of European research. IEEE Communications Magazine, 34(2), 70–81.
- Saunders, S.R (1999) Antennas and Propagation for Wireless Communication Systems. Chichester: John Wiley & Sons, Ltd..
- Rappaport, T.S (2002) Wireless Communications: Principles and Practice, 2nd edn. Upper Saddle River, NJ: Prentice Hall PTR.
-
Vaughan, R. and Bach Andersen, J. (2003) Channels, Propagation and Antennas for Mobile Communications. London: IEE Press.
10.1049/PBEW050E Google Scholar
- Janaswamy, R. (2006) An indoor path loss based on 60 GHz transport theory. IEEE Antennas and Wireless Propagation Letters, 5(1), 58–60.
- Smulders, P. and Correia, L. (1997) Characterisation of propagation in 60 GHz radio channels. Electronic and Communication Engineering Journal, 9(2), 73–80.
- Hansen, J. (2002) A novel stochastic millimeter-wave indoor radio channel. IEEE Journal on Selected Areas in Communications, 20(6), 1240–1246.
- Moraitis, N. and Constantinou, P. (2002) Indoor channel modeling at 60 GHz for wireless LAN applications. Proceedings of the IEEE International Symposium on Personal, Indoor and Mobile Radio Communication, vol. 3, pp. 1203–1207, September.
- Lostalen, Y., Corre, Y., Louët, Y., Helloco, Y.L, Collonge, S. and Zein, G.E (2002) Comparison of measurements and simulations in indoor environments for wireless local area networks. Proceddings of the IEEE Vehicular Technology Conf erence, vol. 1, pp. 389– 393, May.
- Rappaport, T.S and Sandhu, S. (1994) Radio-wave propagation for emerging wireless personal-communication systems. IEEE Antennas and Propagation Magazine, 36(5), 14–24.
- Peter, M., Keusgen, W. and Felbecker, R. (2007) Measurement and ray-tracing simulation of the 60 GHz indoor broadband channel: model accuracy and parameterization. 2nd European Conference on Antennas and Propagataion, pp. 1–8, November.
- Khafaji, A., Saadane, R. El Abbadi, J. and Belkasmi, M. (2008) Ray tracing technique based 60 GHz band propagation modelling and influence of people shadowing. International Journal of Electrical, Computer, and Systems Engineering, pp. 102–108.
- Jacob, M., Kumer, T. and Chambelin, P. (2009) Deterministic channel modeling for 60 GHz WLAN. IEEE 802.11-09-302-00-ad, July.
- Lim, C.-P., Lee, M. Burkholder, R.J, Volakis, J.L Marhefka, R.J (2009) 60 GHz indoor propagation studies for wireless communications based on a ray-tracing method. EURASIP Journal on Wireless Communications and Networking, article ID 73928, January.
- Yong, S.K, Chong, C.C and Lee, S.S (2005) General guidelines for measurement techniques and procedures. IEEE 802.15-05-0357-00-003c, July.
- Liberti, J.C and Rappaport, T.S (1996) A geometrically based model for line-of-sight multi-path radio channels. Proceedings of the IEEE Vehicular Technology Conference, pp. 844–848, April.
- Petrus, P., Reed, J.H and Rappaport, T.S (2002) Geometrical-based statistical macrocell channel model for mobile environments. IEEE Transactions on Communications, 50(3), 495–502.
- Ertel, R.B and Reed, J.H (1999) Angle and time of arrival statistics for circular and elliptical scattering models. IEEE Journal on Selected Areas in Communications, 17(11), 1829–1840.
- Svantesson, T. (2002) A double-bounce channel model for multi-polarized MIMO systems. Proceedings of the IEEE Vehicular Technology Conference, vol. 2, pp. 691–695, May.
- Weichselberger, W., Herdin, M. Özcelik, H. and Bonek, E. (2006) A stochastic MIMO channel model with joint correlation of both link ends. IEEE Transactions on Wireless Communications, 5(1), 90–101..
- Kermoal, J.P, Schumacher, L., Pedersen, K.I, Mogensen, P.E and Frederiksen, F. (2002) A stochastic MIMO radio channel model with experimental validation. IEEE Journal on Selected Areas in Communications, 20(6), 1211–1226.
- Molisch, A.F et al. (2008) A comprehensive standardized model for ultrawideband propagation channels. IEEE Transactions on Antennas and Propagation, 5(51), 3151–3166.
- Chong, C.-C., Kim, Y.E, Yong, S.K and Lee, S.S (2005) Statistical characterization of the UWB propagation channel in indoor residential environment. Wireless Communications and Mobile Computing, 5(5), 503–512 (special issue on UWB communications).
- Xu, H., Kukshya, V. and Rappaport, T.S (2002) Spatial and temporal characteristics of 60 GHz indoor channels. IEEE Journal on Selected Areas in Communications, 20(3), 620–630.
- Anderson, C.R and Rappaport, T.S (2004) In-building wideband partition loss measurements at 2.5 and 60 GHz. IEEE Transactions on Wireless Communications, 3(3), 922–928.
- Matic, D., Harada, H. and Prasad, R. (1998) Indoor and outdoor frequency measurements for MM-waves in the range of 60 GHz. Proceedings of the IEEE Vehicular Technology Conference, vol. 1, pp. 567–571, May.
- Moriatis N. and Constantinou, P. (2004) Indoor channel measurements and characterization at 60 GHz for wireless local area network applications. IEEE Transactions on Antennas and Propagation, 52(12), 3180–3189.
- Fiacco, M., Parks, M., Radi, H. and Saunders, S.R (1998) Final Report: Indoor propagation factors at 17 and 60 GHz. Technical report and study carried out on behalf of the Radiocommunications Agency, University of Surrey, August.
- Radi, H., Fiacco, M., Parks, M.A N. and Saunders, S.R (1998) Simultaneous indoor propagation measurements at 17 and 60 GHz for wireless local area networks. Proceedings of the IEEE Vehicular Technology Conference, pp. 510–514, May.
- Yang, H., Smulders, P.F M. and Herben, M.H A.J (2007) Channel characteristics and transmission performance for various channel configurations at 60 GHz. EURASIP Journal on Wireless Communications and Networking, article ID 19613.
- Geng, S., Kivinen, J., Zhao, X. and Vainikainen, P. (2009) Millimeter-wave propagation channel characterization for short-range wireless communication. IEEE Transactions on Vehicular Technology, 58(1), 3–13.
- Kalivas, G., El-Tanany, M. and Mahmoud, S. (1995) Millimeter-wave channel measurements with space diversity for indoor wireless communications. IEEE Transactions on Vehicular Technology, 44, 494–505.
- Kajiwara, A. (1997) Millimeter wave indoor radio channel artificial reflector. IEEE Transactions on Vehicular Technology, 46, 486–493.
- Bultitude, R.J C., Hahn, R.F and Davies, R.J (1998) Propagation considerations for the design of the an indoor broad band communications system at EHF. IEEE Transactions on Vehicular Technology, 47, 235–245.
- Kivinen, J. (2007) 60- GHz wideband radio channel sounder. IEEE Transactions on Instrumentation and Measurement, 56(5), 1831–1838.
- Pendergrass, M. (2002) Empirically based statistical ultra-wideband channel model. IEEE P802.15-02/240-SG3a.
- Bohdanowicz, A. (2000) Wideband indoor and outdoor radio channel measurements at 17 GHz. UBICOM Technical Report, January.
- Thomas, H.J et al. (1994) An experimental study of the propagation of 55 GHz millimeter waves in an urban mobile radio environment. IEEE Transactions on Vehicular Technology, 43(1), 140–146.
- Yang, H.B, Herben, M.H A.J and Smulders, P.F M. (2005) Impact of antenna pattern and reflective environment on 60 GHz indoor radio channel characteristics. IEEE Antennas and Wireless Propagation Letters, 4.
- Collonge, S., Zaharia, G. and Zein, G.E (2004) Influence of the human activity on wideband characteristics of the 60 GHz indoor radio channel. IEEE Transactions on Wireless Communications, 3(6), 2389–2406.
- Kunisch, J., Zollinger, E. Pamp, J. and Winkelmann, A. (1997) MEDIAN 60 GHz wideband indoor radio channel measurements and model. Proceedings of the IEEE Vehicular Technology Conference, pp. 2393–2397.
- Maltsev, A. et al. (2010) Channel models for 60 GHz WLAN systems. IEEE 802.11-09-0334-06-ad, January.
- Zwick, T., Beukema T.J and Nam, H. (2005) Wideband channel sounder with measurements and model for the 60 GHz indoor radio channel. IEEE Transactions on Vehicular Technology, 54, 1266–1277.
- Choi, M.S, Grosskopf, G. and Rohde, D. (2005) Statistical characteristics of 60 GHz wideband indoor propagation channel. Proceedings of the IEEE International Symposium on Personal, Indoor and Mobile Radio Commununications, September.
- Saleh, A. and Valenzuela, R. (1987) A statistical model for indoor multipath propagation. IEEE Journal on Selected Areas in Communications, 5(2), 128–137.
- Spencer, Q., Jeffs, B.D Jensen, M.A and Swindlehurst, A.L (2000) Modeling the statistical time and angle of arrival characteristics. IEEE Journal on Selected Areas in Communications, 18(3), 347–360.
- Chong, C.-C., Tan, C.-M., Laurenson, D.I, McLaughlin, S., Beach, M.A and Nix, A.R (2003) A new statistical wideband spatio-temporal channel model for 5- GHz band WLAN systems. IEEE Journal on Selected Areas in Communications, 21(2), 139–150.
- Chong, C.-C. and Yong, S.K (2005) A generic statistical-based UWB channel model for high-rise apartments, IEEE Transactions on Antennas Propag., 53(8), 2389–2399.
- Sawada, H. et al. (2006) LOS office channel model based on TSV model. IEEE 802.15-06-0377-00-00-3c, September.
- Pollock, T. et al. (2006) Office 60 GHz channel measurements and model. IEEE 802.15-06-0316-00-00-3c, July.
- Liu, C. et al. (2006) NICTA indoor 60 GHz channel measurements and analysis update. IEEE 802.15-06-0222-00-00-3c, May.
- Cramer, R.J, Scholtz, R.A and Win, M.Z (2002) An evaluation of the ultra-wideband propagation channel. IEEE Transactions on Antennas and Propagation, 50(5), 561–570.
- Guerin, S. (1996) Indoor wideband and narrowband propagation measurements around 60.5 GHz in an empty and furnished room. IEEE Vehicular Technology Conference '96, vol. 1, pp. 160–164, May.
- Purwaha, J., Mank, A., Matic, D., Witrisal, K. and Prasad, R. (1998) Wide-band channel measurements at 60 GHz in indoor environments. Symposium on Vehicular Technology and Communications, Brussels, October.
- Park, J.H, Kim, Y., Hur, Y.S, Lim, K. and Kim, K.H (1998) Analysis of 60 GHz band indoor wireless channels with channel configurations. IEEE International Symposium on Personal, Indoor and Mobile Radio Communications, pp. 617–620.
- Smulders, P.F M. (1995) Broadband wireless LANs: a feasibility study. Ph.D. thesis, Eindhoven University.
- Manabe, T., Sato, K., Masuzawa, H., Taira, K., Ihara, T., Kasashima, Y. and Yamaki, K. (1995) Polarization dependence of multipath propagation and high-speed transmission characteristics of indoor millimeter-wave channel at 60 GHz. IEEE Transactions on Vehicular Technology, 44(2), 268–274.
- Manabe, T., Miura, Y. and Ihara, T. (1996) Effects of antenna directivity and polarization on indoor multipath propagation characteristics at 60 GHz. IEEE Journal on Selected Areas in Communications, 14(3), 441–448.
- Clavier, L. et al. (2001) Wideband 60 GHz indoor channel: characterization and statistical modeling. Proceedings of the IEEE Vehicular Technology Conference, vol. 4, pp. 2098–2102, October.
- Siamarou, A.G and Al-Nuaimi, M.O (2001) Multipath delay spread and signal level measurements for indoor wireless radio channel at 62.4 GHz. IEEE Vehicular Technology Conference '01, pp. 454–458.
- Hubner, J., Zerisberg, S., Koora, K., Borowski, J. and Finger, A. (1997) Simple channel model for 60 GHz indoor wireless LAN design based on complex wideband measurements. IEEE Vehicular Technology Conference '97, vol. 2, pp. 1004–1008, May.
- Davies, R., Bensebti, M., Beach,, M.A and McGeehan, J.P (1991) Wireless propagation measurements in indoor multipath environments at 1.7 GHz and 60 GHz for small cell systems. IEEE Vehicular Technology Conference '91, pp. 581–593, May.
- Williamson, M.R, Athanasiadou, G.E and Nix, A.R (1997) Investigating the effects of antenna directivity on wireless indoor communication at 60 GHz. Proceedings of the IEEE Symposium on Personal, Indoor and Mobile Radio Communications, vol. 2, pp. 635–639, September.
- Ranvier, S., Kivinen, J. and Vainikainen, P. (2007) Millimeter-wave MIMO radio channel sounder. IEEE Transactions on Instrumentation and Measurement, 56(3), 1018–1024.
- Liu, C., Skafidas, E., Pollock, T.S and Evans, R.J (2006) Angle of arrival extended S-V model for the 60 GHz wireless desktop channel. Proceedings of the IEEE International Symposium on Personal, Indoor and Mobile Radio Communications, pp. 1–6, September.
- Moraitis, N. and Constantinou, P. (2006) Measurements and characterization of wideband indoor radio channel at 60 GHz. IEEE Transactions on Wireless Communications, 5(4), 880–889.
- Molisch, A.F, Win, M.Z and Cassioli, D. (2000) The ultra-wide bandwidth indoor channel: from statistical model to simulations. IEEE Journal on Selected Areas in Communications, 20, 1247–1257.
- Yong, S.K and Clerckx, B. (2007) The use of polarization for file transferring. ECMA TG20-TC32-2007-036, March.
- Oestges, C. and Clerckx, B. (2007) MIMO Wireless Communications: From Real-World Propagation to Space-Time Code Design. Boston: Elsevier.
- Maltsev, A. et al. (2009) Polarization model for 60 GHz. IEEE 802.11-09-0431-00ad, April.
- Pagani, P., Siaud, I., Malhouroux, N. and Li, W. (2006) Adaptation of the France Telecom 60 GHz channel model to the TG3c framework. IEEE 802.15-06-0218-00-003c, April.
- Sawada, H., Kato, S. and Sato, K. (2009) Propagation measurements and considerations for TGad channel modeling in conference room, living room and cubicle environments. IEEE 802.11-09-0874-01-ad, May.
- Toyoda, I. (2006) Reference antenna model with sidelobe level for TG3c Evaluation. IEEE 802.15.06-0474-00-003c, October.