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OFDM系统中低复杂度的时变信道迭代均衡算法 被引量:1

Low-Complexity Iterative Equalization for Time-Variant Channels in OFDM Systems
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摘要 针对正交频分复用系统在时变信道中的均衡问题,提出了一种低复杂度的时变信道均衡算法。该算法首先运用一阶多项式基扩展模型对时变信道进行建模,利用频域信道矩阵能量主要集中在对角线附近的特点,将频域信道矩阵按梳状导频的位置沿对角线分块,然后运用高斯置信传播算法分别进行线性迫零均衡。算法避免了矩阵求逆运算,降低了计算复杂度,同时有效补偿了多普勒频移引起的载波间干扰,提高了系统性能。计算机仿真结果和算法复杂度分析表明,提出的分块迭代均衡算法有效降低了时变信道中系统的误码率,并且具有复杂度低,可分布式计算的特点,因此适用于专用集成电路等硬件实现。 In order to tackle the inter-carrier interference (ICI) problem caused by time-variant channels in orthogonal frequency division multiplexing (OFDM) systems, a low-complexity iterative equalization technique was proposed in this paper. The impulse response of a time-variant channel was represented by the first-order polynomial basis expansion model to reduce channel parameters. Since the frequency-domain channel matrix was nearly banded, it was divided by the positions of pilot clusters into blocks along the diagonal for equalization. Then the linear zero-forcing equalization was applied to each block. In order to simplify the computational complexity, the Gaussian belief propagation (GaBP) algorithm was used to solve the linear equations in the equalization. Thus the proposed algorithm avoided the matrix inverse operation, and canceled the effects of inter-carrier interference efficiently. Computational complexity analysis and simulation results showed that the proposed equalization technique reduced the bit error rate significantly with low computational cost. In summary, the proposed block-GaBP equalizer has the superiority of low computational complexity and distributed approach for equaliza- tion, and therefore, is suitable for hardware implementation such as apolication-soccific integrated circuit.
出处 《信号处理》 CSCD 北大核心 2013年第1期17-23,共7页 Journal of Signal Processing
基金 国家自然科学基金-广东联合基金重点项目(U0935002) 广东省重大科技专项(2010A080402004) 广东省产学研重大项目(2011B090400341)
关键词 正交频分复用 时变信道 分块均衡 高斯置信传播算法 Orthogonal Frequency Division Multiplexing Time-Variant Channel Block-based Equalization Gaussian Belief Propagation Algorithm
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参考文献14

  • 1Robertson P, Kaiser S. The effects of Doppler spreads on OFDM(A) mobile radio systems [ C ]. In Proceedings of IEEE Vehicular Technology Conference, Amsterdam, The Netherlands, 1999: 329-333.
  • 2Qu F, Yang L. On the Estimation of Doubly-selective Fading ChanneLs [ J ]. IEEE Transactions on Wireless Communications, 2010, 9(4) : 1261-1265.
  • 3Dumard C, Kaltenberger F, Freudenthaler K. Low-Cost Approximate LMMSE Equalizer Based on Krylov Subspace Methods for HSDPA [J]. IEEE Transactions on Wireless Communications, 2007, 6 (5) : 1610-1614.
  • 4TaubOck G. , Hamperjs M, Svac P, Matz G, Hlawatsch F, Grochenig K. Low-Complexity ICI/ISI Equalization in Doubly Dispersive Multicarrier Systems Using a Decision- Feedback LSQR Algorithm [J]. IEEE Transactions on Signal Processing, 2011, 59(5): 2430-2436.
  • 5韩华,吴乐南.时频双选信道OFDM系统的ICI消除与均衡[J].信号处理,2010,26(7):1039-1043. 被引量:4
  • 6Jeon W G, Chang K H, Cho Y S. An Equalization Technique for Orthogonal Frequency-Division Multiplex Systems in Time-Variant Muhipath Channels [ J ]. IEEE Transactions on Communications, 1999, 47 (1) :27-32.
  • 7Borah D K, Hart B D. Frequency-Selective Fading Channel Estimation with a Polynomial Time-Varying Channel Model [ J ]. IEEE Transactions on Communications, 1999, 47(6) : 862-873.
  • 8Shental O, Siegel P H, Wolf J K, Bickson D, Dolev D. Gaussian Belief Propagation Solver for Systems of Linear Equations [ C ]. In Proceedings of IEEE International Symposium on Information Theory, 2008: 1863-1867.
  • 9Lehmann F. Turbo Equalization of Two-Dimensional Intersymbol Interference Channels Using Gaussian Belief Propagation [ C ]. In Proceedings of IEEE International Conference on Acoustics Speech and signal Processing, 2010 : 3182-3185.
  • 10Hrycak T, Das S, Matz G. Inverse Methods for Recon-struction of Channel Taps in OFDM Systems [ J ]. IEEE Transactions on Signal Processing, 2012, 60 ( 5 ) : 2666 -2671.

二级参考文献21

  • 1Taewon Hwang, Chenyang Yang, Gang Wu, et al. OFDM and Its Wireless Applications: A Survey [ J ]. IEEE Trans. Vehicular Tech, 2009,vol. 58, no. 4:1673-1694.
  • 2S. Kim and G. Pottie, Robust OFDM in fast fading channel[ C ]. in Proceedings of GLOBECOM, 2003, vol. 2 : 1074-1078.
  • 3W. Jeon, K. Chang, and Y. Cho. An equalization technique for orthogonal frequency-division multiplexing systems in time-variant multipath channels[ J]. IEEE Trans. Commun. 1999,vol. 47,no. 1:27-32.
  • 4Y. Choi, P. Vohz, and F. Cassara, On channel estimation and detection for muhicarrier signals in fast and selective Rayleigh fading channels [ J ]. IEEE Trans. Commun. 2001 ,vol. 49 ,no. 8 : 1375-1387.
  • 5Y. Mostofi and D. Cox, ICI mitigation for pilot-aided OFDM mobile systems [ J ]. IEEE Trans. Wireless Commun. 2005, vol. 4, no. 2:765-774.
  • 6Y. Zhao and S.-G. Haggman, Intercarrier interference self-cancellation scheme for OFDM mobile systems [ J ]. IEEE Trans. Commun. 2001,vol. 49, no. 7 : 1185-1191.
  • 7X. Cai and G. Giannakis. Bounding performance and suppressing intercarrier interference in wireless mobile OFDM[ J]. IEEE Trans. Commun. , 2003, vol. 51, no. 12 : 2047-2056.
  • 8Linnartz J P and Gorokhov A. New equalization approach for OFDM dispersive and rapidly time varying channel [C]. In Proc. of IEEE PIMRC,2000,vol. 1:1375-1379.
  • 9A. Papoulis, Probability, Random Variables and Stochastic Processes[ M] ,3rd ed. New York: McGraw-Hill International, 1991.
  • 10Y. Zheng and C. Xiao. Simulation models with correct statistical properties for Rayleigh fading channels [ J ]. IEEE Trans. Commun. , 2003, vol. 51, no. 6:920-928.

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