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Fading Evaluation in the 60GHz Band in Line-of-Sight Conditions

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Fading Evaluation in the 60GHz Band in Line-of-Sight Conditions

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Reig, J.; Martínez Inglés, M.; Rubio Arjona, L.; Rodrigo Peñarrocha, VM.; Molina-García-Pardo, J. (2014). Fading Evaluation in the 60GHz Band in Line-of-Sight Conditions. International Journal of Antennas and Propagation. 2014:1-12. https://doi.org/10.1155/2014/984102

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Título: Fading Evaluation in the 60GHz Band in Line-of-Sight Conditions
Autor: Reig, Juan Martínez Inglés, M.T. Rubio Arjona, Lorenzo Rodrigo Peñarrocha, Vicent Miquel Molina-García-Pardo, J.M.
Entidad UPV: Universitat Politècnica de València. Departamento de Comunicaciones - Departament de Comunicacions
Fecha difusión:
Resumen:
An exhaustive analysis of the small-scale fading amplitude in the 60GHz band is addressed for line-of-sight conditions (LOS). From a measurement campaign carried out in a laboratory, we have estimated the distribution of ...[+]
Palabras clave: Fading Evaluation , 60GHz Band
Derechos de uso: Reconocimiento (by)
Fuente:
International Journal of Antennas and Propagation. (issn: 1687-5869 )
DOI: 10.1155/2014/984102
Editorial:
Hindawi Publishing Corporation
Versión del editor: http://dx.doi.org/10.1155/2014/984102
Código del Proyecto:
info:eu-repo/grantAgreement/MICINN//TEC2010-20841-C04-01/ES/ANTENAS EN LA BANDA DE MILIMETRICAS PARA APLICACIONES INALAMBRICAS DE ALTA VELOCIDAD/
info:eu-repo/grantAgreement/UPV//PAID 05-11-2702/
Agradecimientos:
This work was supported in part by the Spanish Ministerio de Ciencia e Innovacion TEC-2010-20841-C04-1 and by the Universitat Politecnica de Valencia, PAID 05-11 ref. 2702. The authors thank the anonymous reviewers for ...[+]
Tipo: Artículo

References

Smulders, P. (2002). Exploiting the 60 GHz band for local wireless multimedia access: prospects and future directions. IEEE Communications Magazine, 40(1), 140-147. doi:10.1109/35.978061

Park, C., & Rappaport, T. (2007). Short-Range Wireless Communications for Next-Generation Networks: UWB, 60 GHz Millimeter-Wave WPAN, And ZigBee. IEEE Wireless Communications, 14(4), 70-78. doi:10.1109/mwc.2007.4300986

Daniels, R. C., & Heath, R. W. (2007). 60 GHz wireless communications: Emerging requirements and design recommendations. IEEE Vehicular Technology Magazine, 2(3), 41-50. doi:10.1109/mvt.2008.915320 [+]
Smulders, P. (2002). Exploiting the 60 GHz band for local wireless multimedia access: prospects and future directions. IEEE Communications Magazine, 40(1), 140-147. doi:10.1109/35.978061

Park, C., & Rappaport, T. (2007). Short-Range Wireless Communications for Next-Generation Networks: UWB, 60 GHz Millimeter-Wave WPAN, And ZigBee. IEEE Wireless Communications, 14(4), 70-78. doi:10.1109/mwc.2007.4300986

Daniels, R. C., & Heath, R. W. (2007). 60 GHz wireless communications: Emerging requirements and design recommendations. IEEE Vehicular Technology Magazine, 2(3), 41-50. doi:10.1109/mvt.2008.915320

Zwick, T., Beukema, T. J., & Haewoon Nam. (2005). Wideband channel sounder with measurements and model for the 60 GHz indoor radio channel. IEEE Transactions on Vehicular Technology, 54(4), 1266-1277. doi:10.1109/tvt.2005.851354

Shoji, Y., Sawada, H., Chang-Soon Choi, & Ogawa, H. (2009). A Modified SV-Model Suitable for Line-of-Sight Desktop Usage of Millimeter-Wave WPAN Systems. IEEE Transactions on Antennas and Propagation, 57(10), 2940-2948. doi:10.1109/tap.2009.2029286

Hao Xu, Kukshya, V., & Rappaport, T. S. (2002). Spatial and temporal characteristics of 60-GHz indoor channels. IEEE Journal on Selected Areas in Communications, 20(3), 620-630. doi:10.1109/49.995521

Anderson, C. R., & 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. doi:10.1109/twc.2004.826328

Smulders, P. (2009). Statistical Characterization of 60-GHz Indoor Radio Channels. IEEE Transactions on Antennas and Propagation, 57(10), 2820-2829. doi:10.1109/tap.2009.2030524

Thomas, H. J., Cole, R. S., & Siqueira, G. L. (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. doi:10.1109/25.282274

Kyro, M., Haneda, K., Simola, J., Takizawa, K., Hagiwara, H., & Vainikainen, P. (2012). Statistical Channel Models for 60 GHz Radio Propagation in Hospital Environments. IEEE Transactions on Antennas and Propagation, 60(3), 1569-1577. doi:10.1109/tap.2011.2180349

Durgin, G. D., Rappaport, T. S., & de Wolf, D. A. (2002). New analytical models and probability density functions for fading in wireless communications. IEEE Transactions on Communications, 50(6), 1005-1015. doi:10.1109/tcomm.2002.1010620

Yacoub, M. D. (2007). The κ-μ distribution and the η-μ distribution. IEEE Antennas and Propagation Magazine, 49(1), 68-81. doi:10.1109/map.2007.370983

Martinez-Ingles, M.-T., Sanchis-Borras, C., Molina-Garcia-Pardo, J.-M., Rodriguez, J.-V., & Juan-Llacer, L. (2013). Experimental Evaluation of an Indoor MIMO-OFDM System at 60 GHz Based on the IEEE802.15.3c Standard. IEEE Antennas and Wireless Propagation Letters, 12, 1562-1565. doi:10.1109/lawp.2013.2293275

Koay, C. G., & Basser, P. J. (2006). Analytically exact correction scheme for signal extraction from noisy magnitude MR signals. Journal of Magnetic Resonance, 179(2), 317-322. doi:10.1016/j.jmr.2006.01.016

Charash, U. (1979). Reception Through Nakagami Fading Multipath Channels with Random Delays. IEEE Transactions on Communications, 27(4), 657-670. doi:10.1109/tcom.1979.1094444

Hashemi, H. (1993). The indoor radio propagation channel. Proceedings of the IEEE, 81(7), 943-968. doi:10.1109/5.231342

Yacoub, M. D. (2007). The $\alpha$-$\mu$ Distribution: A Physical Fading Model for the Stacy Distribution. IEEE Transactions on Vehicular Technology, 56(1), 27-34. doi:10.1109/tvt.2006.883753

Coulson, A. J., Williamson, A. G., & Vaughan, R. G. (1998). Improved fading distribution for mobile radio. IEE Proceedings - Communications, 145(3), 197. doi:10.1049/ip-com:19981991

Reig, J., & Rubio, L. (2011). On Simple Estimators of the α-μ Fading Distribution. IEEE Transactions on Communications, 59(12), 3254-3258. doi:10.1109/tcomm.2011.080111.090223

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