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Transmit Antenna Selection in the Cooperative Communication Based UWB System

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Abstract

In this paper, We derived an expression of the average bit error rate (ABER) of the relay assisted two-hop ultra-wideband (UWB) communication system over IEEE 802.15.3a channel model incorporated with the transmit antenna selection at the source and relay nodes. In this two-hop system, each node equipped with the multiple antennas and relay is configured to perform decode and forward protocol. The analysis considers the numerically evaluated characteristic function of the sum of the path gains, which are specified in the IEEE 802.15.3a channel model. During the analysis, we assumed that all the channel links and channel paths are independent and identically distributed. Our result shows the derived ABER is well matched to the simulation. It also presents the comparison of the ABER between the investigated and the conventional UWB systems. This paper also presents the flowchart of the Monte-Carlo simulation of the investigated UWB system.

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References

  1. Commission, F. C., et al. (2002). In the matter of revision of part 15 of the commissions rules regarding ultra-wideband transmission systems. First Report and Order in ET Docket 98-153

  2. Foerster, J. (2002). Channel modeling sub-committee report final. IEEE P802. 15-02/490

  3. Roy, S., Foerster, J. R., Somayazulu, V. S., & Leeper, D. G. (2004). Ultrawideband radio design: The promise of high-speed, short-range wireless connectivity. Proceedings of the IEEE, 92(2), 295–311.

    Article  Google Scholar 

  4. Abou-Rjeily, C., Daniele, N., & Belfiore, J.-C. (2008). On the amplify-and-forward cooperative diversity with time-hopping ultra-wideband communications. IEEE Transactions on Communications, 56(4), 630–641.

    Article  Google Scholar 

  5. Laneman, J. N., Tse, D. N., & Wornell, G. W. (2004). Cooperative diversity in wireless networks: Efficient protocols and outage behavior. IEEE Transations on Information Theory, 50(12), 3062–3080.

    Article  MathSciNet  MATH  Google Scholar 

  6. Cho, C., Zhang, H., & Nakagawa, M. (2004). A UWB repeater with a short relaying-delay for range extension. In Wireless Communications and Networking Conference, 2, 1154–1158.

  7. Chihong, C., Zhang, H., & Nakagawa, M. (2007). A short delay relay scheme using shared frequency repeater for UWB impulse radio. IEICE Transactions on Fundamentals of Electronics, Communications and Computer Sciences, 90(7), 1444–1451.

    Google Scholar 

  8. Abou-Rjeily, C., Daniele, N. and Belfiore, J.-C. (2006). On the decode-and-forward cooperative diversity with coherent and non-coherent UWB systems. In Ultra-Wideband, International Conference on, pp. 435-440.

  9. Maichalernnukul, K., Kaiser, T. and Zheng, F. (2009). Performance investigation of a UWB relay system using multiple relays with multiple antennas in ieee 802.15. 3a channel. In Vehicular Technology Conference, IEEE 69th, pp. 1–6.

  10. Maichalernnukul, K., Zheng, F. and Kaiser, T. (2010). UWB MIMO cooperative relay systems: BER analysis and relay regions. In 44th Annual Conference on Information Sciences and Systems (CISS), pp. 1–6

  11. Kaiser, T., Zheng, F., & Dimitrov, E. (2009). An overview of ultra-wide-band systems with MIMO. Proceedings of IEEE, 97(2), 285–312.

    Article  Google Scholar 

  12. Siriwongpairat, W. P., Olfat, M., and Liu, K. R. (2005). Performance analysis and comparison of time-hopping and direct-sequence UWB-MIMO systems. EURASIP Journal on Applied Signal Processing, pp. 328–345

  13. Fan, Y., & Thompson, J. (2007). MIMO configurations for relay channels: Theory and practice. IEEE Transactions on Wireless Communications, 6(5), 1774–1786.

    Article  Google Scholar 

  14. Molisch, A. F. (2010). MIMO-UWB propagation channels. InProceedings of the 4th European Conference on Antennas and Propagation (EuCAP), pp. 16

  15. Chen, Z., Yuan, J., & Vucetic, B. (2005). Analysis of transmit antenna selection/maximal- ratio combining in rayleigh fading channels. IEEE Transactions on Vehicular Technology, 54(4), 1312–1321.

    Article  Google Scholar 

  16. Bjerke, B. A., Zvonar, Z., & Proakis, J. G. (2004). Antenna diversity combining schemes for WCDMA systems in fading multipath channels. IEEE Transactions on Wireless Communications, 3, 97–106.

    Article  Google Scholar 

  17. Chen, Z., Chi, Z., Li, Y., & Vucetic, B. (2009). Error performance of maximal-ratio combining with transmit antenna selection in flat nakagami-m fading channels. IEEE Transactions on Wireless Communications, 8(1), 424–431.

    Article  Google Scholar 

  18. Win, M. Z., and Winters, J. H. (1999). Analysis of hybrid selection/maximal-ratio combining in rayleigh fading. IEEE ICC, pp. 6–10

  19. Molisch, A. F., & Win, M. Z. (2004). MIMO systems with antenna selection. IEEE Microwave Magazine, 5(1), 46–56.

    Article  Google Scholar 

  20. David, H. A., & Nagaraja, H. N. (1970). Order statistics. Hoboken: Wiley.

    MATH  Google Scholar 

  21. Liu, K. R. (2009). Cooperative communications and networking. Cambridge: Cambridge University Press.

    MATH  Google Scholar 

  22. Kumbhani, B., & Kshetrimayum, R. (2015). Error performance of two-hop decode and forward relaying systems with source and relay transmit antenna selection. Electronics Letters, 51(6), 530–532.

    Article  Google Scholar 

  23. Papoulis, A., & Pillai, S. U. (2002). Probability, random variables, and stochastic processes. New York: Tata McGraw-Hill Education.

    Google Scholar 

  24. Wang, L.-C., & Liu, W.-C. (2010). Bit error rate analysis in IEEE 802.15. 3a UWB channels. IEEE Transactions on Wireless Communications, 9(5), 1537–1542.

    Article  Google Scholar 

  25. Hao, K., & Gubner, J. A. (2007). The distribution of sums of path gains in the IEEE 802.15. 3a UWB channel model. IEEE Transactions on Wireless Communications, 6, 811–816.

    Article  Google Scholar 

  26. Agrawal, A., & Kshetrimayum, R. S. (2015). Analysis of UWB communication over IEEE 802.15. 3a channel by superseding lognormal shadowing by Mixture of Gamma distributions. AEU-International Journal of Electronics and Communications, 69(12), 1795–1799.

    Article  Google Scholar 

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Agrawal, A., Kshetrimayum, R.S. Transmit Antenna Selection in the Cooperative Communication Based UWB System. Wireless Pers Commun 94, 3001–3015 (2017). https://doi.org/10.1007/s11277-016-3762-2

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