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Transmit Beamforming Analysis for MIMO Systems in Indoor Residential Environment Based on 3D Ray Tracing

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Abstract

In this paper, an evaluation of transmit beamforming (TxBF) contribution is analyzed in the context of an indoor residential environment. Using an optimized 3D ray tracing tool, the multiple-input multiple-output (MIMO) propagation channel is simulated. The algorithm of singular value decomposition is applied and a new transmission scheme is considered. Comparisons of cases with/without TxBF are realized by analyzing the received power, the signal to noise ratio of each spatial stream and the channel capacity. It is shown that the TxBF capacity gain increases when the MIMO channel correlation at the transmit side reaches high values, especially when only the dominant eigen mode is selected. The main result concerns the antenna spacing: a judicious choice of the transmitting antenna spacing can improve the effective transmission range by more than 45 % in non-line of sight conditions. Several MIMO configurations (number of antennas and spatial streams) are also compared to determine the relevance of a possible activation of TxBF. The interference influence is studied and it is shown that under some conditions, TxBF improves the signal to interference ratio.

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References

  1. Nguyen, H. T., Andersen, J. B., & Pedersen, G. F. (2007). On the performance of link adaptation techniques in MIMO systems. Wireless Personal Communications, 35(4), 289–309.

    Google Scholar 

  2. Desai, V., Kepler, J. F. & Vook, F. W. (2008). Field data showing the downlink adaptive beamforming gains in an experimental IEEE 802.16e-2005 OFDMA system. In Radio and wireless symposium, 2008 IEEE.

  3. Hermosilla, C., Valenzuela, R. A., Ahumada, L., & Feick, R. (2009). Empirical comparison of MIMO and beamforming schemes for outdoor–indoor scenarios. IEEE Transactions on Wireless Communications, 8(3), 1139–1143.

    Article  Google Scholar 

  4. Tran, G. K., Dao, N. D., Sakaguchi, K., Araki, K., Iwai, H., Sakata, T., & Ogawa, K. (2006). Performance analysis of MIMO-OFDM systems using indoor wideband MIMO channel measurement data. In Vehicular technology conference, VTC 2006 Spring, IEEE 63rd, Vol. 6, pp. 2868–2872, 7–10 May 2006.

  5. Nishimoto, H., Ogawa, Y., Nishimura, T., & Ohgane, T. (2007). Measurement-based performance evaluation of MIMO spatial multiplexing in a multipath-rich indoor environment. IEEE Transactions on Antennas and Propagation, 55(12), 3677–3689.

    Article  Google Scholar 

  6. Hermosilla, C., Valenzuela, R. A., Ahumada, L. & Feick, R. (2008). Empirical comparison of MIMO and beamforming schemes. In IEEE International conference on communications, 2008. ICC ’08, pp. 4226–4229, 19–23 May 2008.

  7. Friedlander, B., & Scherzer, S. (2004). Beamforming versus transmit diversity in the downlink of a cellular communications system. IEEE Transactions on Vehicular Technology, 53(4), 1023–1034.

    Article  Google Scholar 

  8. Busche, H., Vanaev, A., & Rohling, H. (2009). SVD-based MIMO precoding and equalization schemes for realistic channel knowledge: Design criteria and performance evaluation. Wireless Personal Communications, 2009-02-01.

  9. Lebrun, G., Ying, T., & Faulkner, M. (2002). MIMO transmission over a tisme-varying channel using SVD. IEEE on Global Telecommunications Conference, GLOBECOM ’02, 1(1), 414–418.

    Google Scholar 

  10. Morozov, G., Davydov, A. & Papathanassiou, A. (2010). A novel combined CSI feedback mechanism to support multi-user MIMO beamforming schemes in TDD-OFDMA systems. In International congress on ultra modern telecommunications and control systems and workshops (ICUMT), 2010, pp. 896–900, 18–20 October 2010.

  11. Xiantao, S., Wang, Q., Cimini, L. J., Greenstein, L. J., & Chan, D. S. (2012). ICI/ISI-aware beamforming for MIMO-OFDM wireless systems. IEEE Transactions on Wireless Communications, 11(1), 378–385.

    Article  Google Scholar 

  12. Quadri, S., & Haines, R. J. (2009). Industrial prototyping: A common architecture and case study of IEEE 802.11n transmit beamforming. In Vehicular technology conference, VTC Spring 2009, IEEE 69th, pp. 1–5, 26–29 April 2009.

  13. Anderson, J. B. (2000). Array gain and capacity for known random channels with multiple element arrays at both ends. IEEE Journal on Selected Areas in Communications, 18(11), 2172–2178.

    Article  Google Scholar 

  14. Sengul, E., Akay, E., & Ayanoglu, E. (2006). Diversity analysis of single and multiple beamforming. IEEE Transactions on Communications, 54(6), 990–993.

    Article  Google Scholar 

  15. Haddad, E., Malhouroux, N., Pajusco, P., & Ney, M. (2011). Optimization of 3D ray tracing for MIMO indoor channel. In General assembly and scientific symposium, 2011, URSI, pp. 1–4, 13–20 August 2011.

  16. Tesserault, G., Malhouroux, N., & Pajusco, P. (2007). Multi-frequencies characterization of building materials: Angular and polarization analysis. In European conference on antennas and propagation.

  17. Senaratne, D., & Tellambura, C. (2010). Generalized singular value decomposition for coordinated beamforming in MIMO systems. In Global telecommunications conference (GLOBECOM 2010), IEEE, pp. 1–6, 6–10 December 2010.

  18. IEEE Draft Standard for Information Technology—Telecommunications and Information Exchange Between Systems—Local and Metropolitan Area Networks—Specific Requirements—Part 11: Wireless LAN Medium Access Control (MAC) and Physical Layer (PHY) Specifications. IEEE P802.11-REVmb/D10.0, August 2011 (Revision of IEEE Std 802.11-2007, as amended by IEEE Std 802.11k-2008, IEEE Std 802.11r-2008, IEEE Std 802.11y-2008, IEEE Std 802.11w-2009 and IEEE Std 802.11n-2009), pp. 1–3026, August 20 2011.

  19. Wyne, S., Haneda, K., Ranvier, S., Tufvesson, F., & Molisch, A. F. (2011). Beamforming effects on measured mm-wave channel characteristics. IEEE Transactions on Wireless Communications, 10(11), 3553–3559.

    Article  Google Scholar 

  20. Perahia, A., & Stacey, R. (2008). Next generation wireless LANs throughput, robustness, and reliability in 802.11n. Cambridge University Press.

  21. Jie, X., Goeckel, D. L., & Janaswamy, R. (2009). The capacity of MIMO systems with increasing SNR by electromagnetic analysis. IEEE Transactions on Wireless Communications, 8(9), 4752–4761.

    Article  Google Scholar 

  22. Paul, T. K., & Ogunfunmi, T. (2008). Wireless LAN comes of age: Understanding the IEEE 802.11n amendment. IEEE on Circuits and Systems Magazine, 8(1), 28–54.

    Article  Google Scholar 

  23. TGn Channel Models, IEEE Std. 802.11-03/940r4 (May, 2004).

  24. Ozcelik, M., Czink, N., & Bonek, E. (2005). What makes a good MIMO channel model? In Vehicular technology conference, VTC-Spring, 2005, IEEE 61st, pp. 156–160, 30 May–1 June 2005.

  25. Palomar, D. P., & Lagunas, M. A. (2003). Joint transmit-receive space-time equalization in spatially correlated MIMO channels: A beamforming approach. IEEE Journal on Selected Areas in Communications, 21(5), 730–743.

    Article  Google Scholar 

  26. Rappaport, T. (1996). Wireless communication: Principles and practice. New York: IEEE Press.

    Google Scholar 

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Correspondence to Ghaïs El Zein.

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Bouhlel, A., Guillet, V., El Zein, G. et al. Transmit Beamforming Analysis for MIMO Systems in Indoor Residential Environment Based on 3D Ray Tracing. Wireless Pers Commun 82, 509–531 (2015). https://doi.org/10.1007/s11277-014-2238-5

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  • DOI: https://doi.org/10.1007/s11277-014-2238-5

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