DOI QR코드

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레일리 페이딩 채널 상에서 기회주의적 증분형 중계기 선택 기법을 기반으로 한 협력 전송 알고리즘

Cooperative Transmission Protocol based on Opportunistic Incremental Relay Selection over Rayleigh fading channels

  • 단 디 쉬엔 (울산대학교 전기전자정보시스템공학부) ;
  • 공형윤 (울산대학교 전기전자정보시스템공학부)
  • 투고 : 2011.04.16
  • 심사 : 2011.10.14
  • 발행 : 2011.10.31

초록

본 논문에서는 새로운 협력 전송 프로토콜을 제안한다. 기존의 협력 전송 프로토콜은 송신단과 수신단 사이에 위치하는 다수의 노드들 중에서 가장 높은 SNR을 가지는 노드를 이용하여 수신단으로 신호를 전송한다. 그러나 본 논문에서 제안하는 협력 전송 프로토콜은 노드의 위치정보를 기반으로 하여 송신단으로부터 복호에 성공한 노드들 중 수신단에 가장 가까운 노드를 선택하여 선택된 노드만이 수신단으로 신호를 전송하게 한다. 본 논문에서 제안하는 위치 정보를 기반으로 하는 중계기 선택 기법을 이용하는 협력 전송 프로토콜에 대해 수학적으로 분석하고 모의실험을 통해 이를 증명한다.

In this paper, we firstly propose a novel cooperative transmission protocol, which utilizes the advantages of mid-notes in the route from the source to the destination. Taking benefits from balancing between the received packet from the source and acknowledge message from the destination, the mid-node between the source and the destination is firstly considered to be the broadcaster. If its signal is successfully received from the source, it leads to consider the next nodes, which has closer distance to the destination than it. If one of these nodes correctly receives the signal, it performs broadcasting the signal to the destination instead of mid-node. Otherwise, the mid-node directs attention to these nodes being near to the destination. As the result, some nodes are unnecessary to be considered and passed over time. After that, we analyze some published selection relaying schemes based on geographic information to choose the best nodes instead of the instantaneous SNR as before. Finally, simulation results are given to demonstrate the correctness of the performance analyses and show the significant improvement of the selection relaying schemes based geographic information compared to the other ones.

키워드

참고문헌

  1. Bletsas, A., et al., A Simple Cooperative Diversity Method Based on Network Path Selection. IEEE Journal on Select Areas in Communications, 2006. 24(3): p. 659-672. https://doi.org/10.1109/JSAC.2005.862417
  2. Michalopoulos, D.S. and G.K. Karagiannidis, Performance analysis of single relay selection in rayleigh fading. Wireless Communications, IEEE Transactions on, 2008. 7(10): p. 3718-3724. https://doi.org/10.1109/T-WC.2008.070492
  3. Xu, F., et al., Outage Performance of Cooperative Communication Systems Using Opportunistic Relaying and Selection Combining Receiver. Signal Processing Letters, IEEE, 2009. 16(2): p.113-116. https://doi.org/10.1109/LSP.2008.2008464
  4. Zhihang, Y. and K. Il-Min, Relay ordering in a multi-hop cooperative diversity network. Communications, IEEE Transactions on, 2009. 57(9): p. 2590-2596. https://doi.org/10.1109/TCOMM.2009.09.070595
  5. Zhou, Q.F., F.C.M. Lau, and S.F. Hau, Asymptotic Analysis of Opportunistic Relaying Protocols. Wireless Communications, IEEE Transactions on, 2009. 8(8): p. 3915-3920. https://doi.org/10.1109/TWC.2009.080783
  6. Sanjit Biswas, R.M., ExOR: Opportunistic Multi Hop Routing for Wireless Networks. Proceedigs of ACM SIGCOMM'05, 2005: p. 133-144.
  7. Zorzi, M. and R.R. Rao, Geographic random forwarding(GeRaF) for ad hoc and sensor networks: energy and latency performance. Mobile Computing, IEEE Transactions, 2003. 2(4): p. 349-365. https://doi.org/10.1109/TMC.2003.1255650
  8. Mauve, M., A. Widmer, and H. Hartenstein, A survey on position-based routing in mobile ad hoc networks. Network, IEEE, 2001. 15(6): p. 30-39.
  9. Guanding, Y., Z. Zhaoyang, and Q. Peiliang. Cooperative ARQ in Wireless Networks : Protocols Description and Performance Analysis. in Communications, 2006. ICC '06. IEEE International Conference on. 2006.
  10. Yu, G., Z. Zhang, and P. Qiu, Efficient ARQ protocols for exploiting cooperative relaying in wireless sensor networks. Computer Communications, 2007. 30(14-15): p. 2765-2773. https://doi.org/10.1016/j.comcom.2007.05.016