Cognitive Radio 시스템 환경에서의 다중 홉 릴레이 전송 기법

A Multi-hop Relaying Transmission Scheme in Cognitive Radio System

  • 발행 : 2008.09.30

초록

본 논문에서는 IEEE 802.22 기반의 인지라디오 시스템에서 다중 홉 릴레이 방식의 적용 방안을 제안한다. 먼저, 중계기를 통한 전송 시나리오를 가정하고 이를 지원하기 위한 물리 채널 프레임 구조를 예시한다. 다음으로, 분산 감지 (distributed sensing) 방식을 이용한 가용 채널 결정 방식을 제안하고 이를 토대로, 기지국 중심의 중앙집중형 (centralized) 채널 할당 기법 및 릴레이 전송을 위한 중계기 선택 알고리즘을 개발하였다. 그리고 수학적 해석과 시뮬레이션을 통한 성능 분석 결과는 제안한 다중 홉 릴레이 방식이 중계기를 사용하지 않은 기존의 인지 라디오 시스템에 비해 스펙트럼 이용효율과 시스템 수율 측면에서 성능 향상이 있음을 보여준다.

In this paper, a multi-hop relaying transmission scheme is analyzed regarding its feasibility and potentiality in the IEEE 802.22-based cognitive radio (CR) environment. Shortly, basic design issues are addressed such as relay station (RS) deployment and a frame structure of physical channel to escape inter-hop interference. This paper mainly develops a radio resource management scheme based on spectrum sensing results aggregated from CR secondary nodes and improves the opportunistic spectrum sharing efficiency. In particular, a decision rule about a channel availability is made using a distributed sensing method. Subsequently, spectrum allocation and routing path decision procedures are proposed to establish a link from source to destination with a hop-by-hop manner. Simulation results show that the proposed multi-hop relaying scheme is substantially profitable in CR environments if the number of hops and RS deployment are designed in such a way that the spectrum sharing gain is larger than spectrum division loss which is inherently induced in multi-hop relaying systems.

키워드

참고문헌

  1. Federal Communications Commission (FCC), "Notice of proposed rule making and order," ET Docket No.03-222, December 2003
  2. 강희조, "4세대 통신을 위한 Cognitive Radio Spectrum 활용방안 연구," 정보통신연구진흥원, 2006
  3. I. F. Akyildiz, W. Y. Lee, M. C. Vuran, and S. Mohanty, "NeXt generation/dynamic spectrum access/ cognitive radio wireless networks: A survey," Computer Networks, Vol.50, No.13, May 2006
  4. IEEE P802.22/D0.2, Draft Standard for Wireless Regional Area Networks Part 22: Cognitive Wireless RAN Medium Access Control (MAC) and Physical Layer (PHY) specifications: Policies and procedures for operation in the TV Bands, November 2006
  5. C. R. Stevenson, C. Corderio, and G. Chouinard, "Functional Requirements for the 802.22 WRAN Standard," IEEE 802.22-05/0007r48, November 2006
  6. IST-2003-507581 WINNER D3.2 ver. 1.1, "Description of identified new relay based radio network deployment concepts and first assessment by comparison against benchmarks of well known deployment concepts using enhanced radio interface technologies," February 2005
  7. J. Cho and Z. J. Haas, "On the throughput enhancement of the downstream channel in cellular radio networks through multihop relaying,", IEEE Journ. Select. Areas Commun., Vol.22, No.7, September 2004 https://doi.org/10.1109/JSAC.2004.836009
  8. S. Krishnamurthy, M. Thoppian, S. Venkatesan and R. Prakash, "Control channel based MAC-layer configuration, routing and situation awareness for cognitive radio networks," in Proc. IEEE MILCOM 2005, October 2005
  9. R. Pabst, et al., "Relay-based deployment concepts for wireless and mobile broadband radio," IEEE Commun. Magn., Vol.42, No.9, September 2004
  10. M. Okuda, H. Fujita, and J. Suga, "Relaying methods proposal for 802.16j," IEEE C802.16j-06/132, November 2006
  11. V. Sreng, H. Yanikomeroglu, and D. D. Falconer, "Relayer Selection Strategies in Cellular Networks with Peer-to-Peer Relaying," in Proc. IEEE VTC 2003-fall, October 2006
  12. S. H. Hwang and H. S. Cho, "A novel channel allocation and scheduling algorithm in OFDMA system," in Proc. IEEE VTC 2006-fall, September 2006
  13. W. Feller, An Introduction to Probability Theory and its Applications, Vol.1, 3rd ed., John Wiley & Sons, Inc, 1957, pp. 101-102
  14. T. S. Rappaport, Wireless Communications Principles and Practice, 2nd ed., Prentice Hall, 2002, pp. 138-139
  15. G. Chouuinard, TPC and Adaptive Modulation Profile, IEEE 80.22-04/0268r0, Dec. 2006