Abstract
To mitigate inter-cell interference, which causes throughput degradation for cell-edge users, a shared relay with sector antennas that are connected to neighboring base stations (BSs) with optical cable is deployed in the cell boundary. Each sector of the shared relays can be considered a remote antenna directed to the connected BS. By controlling the transmit power, inter-cell interference can be mitigated and high-throughput performance can be achieved. Additionally, better handover performance can be obtained by reducing unnecessary handovers caused by ambiguity in the cell boundary. Through computer simulations with the hexagonal cell structure and the proposed shared relay with three sectors, performance gain of the proposed system deployment was verified.





Notes
When BSs have more sectors, SRs have the same number of sectors. Even in cases, performance gains in terms of throughput and handover can be obtained by deploying SRs. This gain is caused not only by interference reduction but also by higher desired signal power due to higher antenna gain of sector antennas.
This means that a single subcarrier in orthogonal frequency division multiple access (OFDMA) systems is taken into consideration.
References
3GPP: TR 25.892 v6.0.0 Feasibility study for orthogonal frequency division multiplexing (OFDM) for UTRAN enhancement (2004).
3GPP: TR 36.814 v9.0.0 Further advancements for EUTRA physical layer aspects (2010).
Dahrouj, H., & Yu, W. (2010). Coordinated beamforming for the multi-cell multi-antenna wireless system. IEEE Transactions on Wireless Communications, 9(5), 1748–1759.
Foschini, G., Karakayali, K., & Valenzuela, R. (2006). Coordinating multiple antenna cellular networks to achieve enormous spectral efficiency. IEE Proceedings: Communications, 153(4), 548–555.
Hemachandra, K. T., & Beaulieu, N. (2014). Shared relay networks with linear receivers at the relay: Two-cell case. IEEE Transactions on Communications, 62(4), 1230–1239.
IEEE 820.16j: Baseline document for draft standard for local and metropolitan area networks Part 16: Air interface for fixed and mobile broadband wireless access systems (2007).
Lin, Y., & Yu, W. (2012). Fair scheduling and resource allocation for wireless cellular network with shared relays. IEEE Journal on Selected Areas in Communications, 30(8), 1530–1540.
Lo, T. K. Y. (1999). Maximum ratio transmission. IEEE Transactions on Communications, 47(10), 1458–1461.
Peters, S., Panah, A., Truong, K., & Heath, R. (2009). Relay architectures for 3GPP LTE-advanced. EURASIP Journal on Wireless Communications on Networking, 1, 1.
Pollini, G. (1996). Trends in handover design. IEEE Communications Magazine, 34(3), 82–90.
Qiu, J., Zhang, R., Luo, Z. Q., & Cui, S. (2011). Optimal distributed beamforming for MISO interference channels. IEEE Transactions on Signal Processing, 59(11), 5638–5643.
Zafar, A., Shaqfeh, M., Alouini, M., & Alnuweiri, H. (2014). Resource allocation for two source-destination pairs sharing a single relay with a buffer. IEEE Transactions on Communications, 62(5), 1444–1457.
Zhang, J., & Andrews, J. G. (2010). Adaptive spatial intercell interference cancellation in multicell wireless networks. IEEE Journal on Selected Areas in Communications, 28(9), 1455–1468.
Acknowledgments
This research was supported by Basic Science Research Program through the National Research Foundation of Korea(NRF) funded by the Ministry of Science, ICT & Future Planning(NRF-2014R1A1A1002179).
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Cho, S., Oh, Y., Yu, H. et al. A New Cellular Network Structure Deploying Shared Relays with Sectorization. Wireless Pers Commun 94, 2987–2999 (2017). https://doi.org/10.1007/s11277-016-3761-3
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DOI: https://doi.org/10.1007/s11277-016-3761-3