DOI QR코드

DOI QR Code

A Parallel Combinatory OFDM System with Weighted Phase Subcarriers

  • Zheng, Hui (Wireless Transmission Laboratory, Inha University) ;
  • Shrestha, Robin (Wireless Transmission Laboratory, Inha University) ;
  • Hwang, Jae-Ho (Wireless Transmission Laboratory, Inha University) ;
  • Kim, Jae-Mong (Wireless Transmission Laboratory, Inha University)
  • 투고 : 2011.01.27
  • 심사 : 2011.12.15
  • 발행 : 2012.01.30

초록

Orthogonal Frequency Division Multiplexing (OFDM) is usually regarded as a spectral efficient multicarrier modulation technique, yet it suffers from a high peak-to-average power ratio (PAPR) problem. Among all the existing PAPR reduction techniques in OFDM systems, side information based PAPR reduction techniques such as partial transmit sequence (PTS) and selective mapping (SLM) schemes, have attracted the most attention. However, the transmission of side information results in somewhat spectral loss and this does not significantly improve the bit error rate (BER) performance. Parallel combinatory (PC) OFDM yields higher spectral efficiency (SE) and better BER performance on Gaussian channels,while is a little but not obvious PAPR improvement over the ordinary OFDM system. This investigation aimed to design a 'perfect' OFDM system. We introduce the side information to rotate the subcarrier phases of our novel PC-OFDM system structure, and call this new system the SIPC(Side information based Parallel Combinatory)-OFDM system. The proposed system achieves better PAPR and SE performance. In addition, considering the tradeoff of system parameters, the proposed system also has the properties of a higher BER.

키워드

참고문헌

  1. S. Sasaki, H. Kikuchi, J. Zhu and G. Marubayashi, "Performance evaluation of parallel combinatory SSMA systems in Rayleigh fading channel," in Proc. of IEEE Third International Symposium on Spread Spectrum Techniques and Applications(ISSSTA '94), pp.198-202, 1994.
  2. Pal K. Frenger, N, Arne and B. Svensson, "Parallel Combinatory OFDM signaling," IEEE Trans. on communications, vol.47, No.4, pp.558-567, Apr. 1999. https://doi.org/10.1109/26.764929
  3. Jiand Xiaofei, Guo Lili, Wang Bailing and Qi Lin, "Performance analysis for UWB system based on parallel combinatory spread spectrum using different Pseudo-noise sequences," IEEE int Education technology and computer, 2010.
  4. Y. Kagana, S. Sasaki and H. Kikuchi, "Performance of parallel combinatory UWB system in multipath channel," Journal of Institute of Electronics, Information and Communication Engineers, vol.106, no.103, pp.37-42, 2006.
  5. Kitamoto and Tomoaki Ohtsuki, "Parallel combinatory multiple-subcarrier optical wireless communication systems," in Proc. of IEEE International Symposium on Article (CrossRef Link) Personal, Indoor and Mobile Radio Communications, 2002.
  6. R. J. Baxley and G. T. Zhou, "Comparing selected mapping and partial transmit sequence for PAR reduction," IEEE Trans. Broadcasting, vol. 53, no.4, pp.797-803, Dec. 2007.
  7. Ochiai, H. and Imai, H., "Performance analysis of deliberately clipped OFDM signals," IEEE Trans. on Communications, vol.50, no.1, pp.89-101, Jan. 2002. https://doi.org/10.1109/26.975762
  8. J. Tellado, "Peak to average power ratio reduction for multicarrier modulation," Ph.D thesis, University of Stanford, 1999.
  9. S. SYoo, S. Y. Kim, and I. song, "A novel PAPR reduction scheme for OFDM systems: Selective mapping of partial tones (SMOPT)," IEEE Transaction on Consumer Electronics, vol. 52, no.1, pp. 40-43, Feb. 2006.
  10. Y. J. Kou. W. S. Lu and A. Anthoniou, "A new peak-to-average power ratio reduction algorithm for OFDM systems via constellation extension," IEEE Transaction on wireless Communications, vol. 6, no. 5, pp. 1823-1832, May. 2007.
  11. Lili Guan, Tao Jiang, Yang Zhou and Cai Li, "A novel constellation extension for reduction of peak-to-average power ratio in OFDM systems," in Proc. of IEEE International Symposium on Broadband Multimedia Systems and Broadcasting, pp 1-4, 2010.
  12. Cai Li, Tao Jiang, Yang Zhou and Haibo Li, "A novel constellation reshaping method for PAPR reduction of OFDM signals" IEEE Transactions on Signal Processing, vol. 59, no. 6, pp. 2710-2719, Jun. 2011.
  13. C. L. Wang and Q. Y. Yuan, "Low-complexity selected mapping schemes for peak-to-average power ratio reduction in OFDM systems," IEEE Transaction on Signal Processing, vol. 53, No. 12, pp. 4652-4660, Dec. 2005.
  14. A. Alavi, C. Tellambura and I. Fair, "PAPR reduction of OFDM signals using partial transmit sequence: An optimal approach using sphere decoding," IEEE Transaction on Communications Letters, vol. 9, no. 11, pp. 982-984, Nov. 2005. https://doi.org/10.1109/LCOMM.2005.11014
  15. Yang Zhou and Tao Jiang, "A novel multi-points square mapping combined with PTS for PAPR reduction of OFDM signals without side information," IEEE Transactions on Broadcasting, vol. 55, no. 4, pp. 831-835, Dec. 2009.
  16. Lili Guan, Tao Jiang, DaiMing Qu and Yang Zhou, "Joint channel estimation and PTS to reduce peak-to-average-power radio in OFDM Systems without side information," IEEE Signal Processing Letters, vol. 17, no. 10, pp. 883-886, Oct. 2010.
  17. Tao Jiang and Yiyan Wu, "An overview: Peak-to-average power ratio reduction techniques for OFDM signals," IEEE Transaction on Broadcasting, vol. 54, no. 2, pp. 257-268, Jun. 2008.
  18. http://en.wikipedia.org/wiki/Spectral_efficiency