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Interference Mitigation Scheme by Antenna Selection in Device-to-Device Communication Underlaying Cellular Networks

  • Wang, Yuyang (National Mobile Communications Research Laboratory, Southeast University) ;
  • Jin, Shi (National Mobile Communications Research Laboratory, Southeast University) ;
  • Ni, Yiyang (Jiangsu Key Laboratory of Wireless Communication, Nanjing University of Posts and Telecommunications) ;
  • Wong, Kai-Kit (Department of Electronic and Electrical Engineering, University College London)
  • Published : 2016.06.30

Abstract

In this paper, we investigate an interference mitigation scheme by antenna selection in device-to-device (D2D) communication underlaying downlink cellular networks. We first present the closed-form expression of the system achievable rate and its asymptotic behaviors at high signal-to-noise ratio (SNR) and the large antenna number scenarios. It is shown that the high SNR approximation increases with more antennas and higher ratio between the transmit SNR at the base station (BS) and the D2D transmitter. In addition, a tight approximation is derived for the rate and we reveal two thresholds for both the distance of the D2D link and the transmit SNR at the BS above which the underlaid D2D communication will degrade the system rate. We then particularize on the small cell setting where all users are closely located. In the small cell scenario, we show that the relationship between the distance of the D2D transmitting link and that of the D2D interfering link to the cellular user determines whether the D2D communication can enhance the system achievable rate. Numerical results are provided to verify these results.

Keywords

Acknowledgement

Supported by : National Natural Science Foundation of China

References

  1. Y. Wang, S. Jin, Y. Ni, and K.-K. Wong, "Interference-mitigation based antenna selection scheme in device-to-device communication underlaying cellular networks," in Proc. IEEE WCSP, Oct. 2014, pp. 1-6.
  2. A. Osseiran et al., "Scenarios for 5G mobile and wireless communications: The vision of theMETIS project," IEEE Commun. Mag., vol. 52, no. 5, pp. 26-35, May 2014. https://doi.org/10.1109/MCOM.2014.6815890
  3. A. Gohil, H. Modi, and S. Patel, "5G technology of mobile communication: A survey," in Proc. IEEE ISSP, Mar. 2013, pp. 288-292.
  4. C. Felita and M. Suryanegara, "5G key technologies: Identifying innovation opportunity," in Proc. IEEE QiR, June 2013, pp. 235-238.
  5. J. Andrews et al., "What will 5G be?" IEEE J. Sel. Areas Commun., vol. 32, no. 7, July 2014.
  6. L.Wei, R. Q. Hu, Y. Qian, and G.Wu, "Enable device-to-device communications underlaying cellular networks: Challenges and research aspects," IEEE Commun. Mag., vol. 52, no. 6, pp. 90-96, June 2014.
  7. M. Hasan, E. Hossain, and D. I. Kim, "Resource allocation under channel uncertainties for relay-aided device-to-device communication underlaying LTE-A cellular networks," IEEE Trans. Wireless Commun., vol. 13, no. 4, pp. 2322-2338, Apr. 2014. https://doi.org/10.1109/TWC.2014.031314.131651
  8. K. Doppler, M. Rinne, C. Wijting, C. Ribeiro, and K. Hugl, "Device-todevice communication as an underlay to LTE-advanced networks," IEEE Commun. Mag., vol. 47, no. 12, pp. 42-49, Dec 2009. https://doi.org/10.1109/MCOM.2009.5350367
  9. Y. Xu, Y. Liu, K. Yang, D. Li, and Q. Luo, "Interference mitigation scheme for device-to-device communication with QoS constraint," in Proc. IEEE PIMRC, Sept. 2013, pp. 1784-1788.
  10. Y.-H. Lee et al., "Using genetic algorithm with frequency hopping in device to device communication (D2DC) interference mitigation," in Proc. IEEE ISPACS, Nov. 2012, pp. 201-206.
  11. S. Xu, H. Wang, T. Chen, Q. Huang, and T. Peng, "Effective interference cancellation scheme for device-to-device communication underlaying cellular networks," in Proc. IEEE VTC, Sept. 2010, pp. 1-5.
  12. W. Xu, L. Liang, H. Zhang, S. Jin, J. Li, and M. Lei, "Performance enhanced transmission in device-to-device communications: Beamforming or interference cancellation?" in Proc. IEEE GLOBECOM, Dec. 2012, pp. 4296-4301.
  13. W. Fu, R. Yao, F. Gao, J. Li, and M. Lei, "Robust null-space based interference avoiding scheme for D2D communication underlaying cellular networks," in Proc. IEEE WCNC, Apr. 2013, pp. 4158-4162.
  14. H. Tang, C. Zhu, and Z. Ding, "Cooperative MIMO precoding for D2D underlay in cellular networks," in Proc. IEEE ICC, June 2013, pp. 5517-5521.
  15. R. Tanbourgi, H. Jakel, and F. Jondral, "Cooperative interference cancellation using device-to-device communications," IEEE Commun. Mag., vol. 52, no. 6, pp. 118-124, June 2014. https://doi.org/10.1109/MCOM.2014.6829953
  16. M. Abramowitz and I. A. Stegun, Eds., Handbook of Mathematical Functions with Formulas, Graphs, and Mathematical Tables. Dover Publications, 1964.
  17. E. Larsson, O. Edfors, F. Tufvesson, and T. Marzetta, "Massive MIMO for next generation wireless systems," IEEE Commun. Mag., vol. 52, no. 2, pp. 186-195, Feb. 2014. https://doi.org/10.1109/MCOM.2014.6736761
  18. W. Liu, S. Han, C. Yang, and C. Sun, "Massive MIMO or small cell network: Who is more energy efficient?," in Proc. IEEE WCNC Workshops, Apr. 2013, pp. 24-29.