| 研究生: |
邱士豪 Shi-Hao Chiu |
|---|---|
| 論文名稱: |
正交分頻多工系統最大可能性聯合載波頻率和通道估測 Joint Maximum Likelihood Estimation of Carrier Frequency Offsets and Channels in OFDM Systems |
| 指導教授: |
陳永芳
Yung-Fang Chen |
| 口試委員: | |
| 學位類別: |
碩士 Master |
| 系所名稱: |
資訊電機學院 - 通訊工程學系 Department of Communication Engineering |
| 畢業學年度: | 100 |
| 語文別: | 英文 |
| 論文頁數: | 36 |
| 中文關鍵詞: | 正交分頻多工 載波頻率偏移 |
| 外文關鍵詞: | joint maximum likelihood estimation; carrier fre |
| 相關次數: | 點閱:8 下載:0 |
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這篇論文探討了在正交分頻多工系統中利用最大可能性準則做載波頻率偏移和頻率選擇通道響應的聯合估測。首先介紹訊號模型以及聯合估測器的推導,提出的演算法可以分成兩大部分,第一部分是利用旋轉觀念初步的估測載波頻率偏移再利用頻域等化器來提升估測準確率,第二部分則是利用疊代的觀念來找到最大的頻率波峰。所提出的疊代演算法不需要做初始值的猜測,可以正確收斂至全域最大值而不是區域最大值,演算法的計算複雜度和格子搜尋法比較起來大幅度的減少,較利於硬體上的實現而且在平均錯誤平方 (MSE) 精確度上也貼近於克拉瑪 (CRB) 界線。
A joint estimation method of carrier frequency offset and frequency selective channel response in orthogonal frequency division multiplexing (OFDM) systems is presented in this thesis based on the maximum likelihood (ML) criterion. The signal model is introduced and a joint estimator is derived. The proposed algorithm can be divided into two major portions. The first part is to use the rotation concept to estimate the initial CFO and design the frequency domain equalizer. The second part is making use of iterative concept to find the true frequency peak for better estimate. The proposed scheme does not require initial random guess as regular iterative algorithms, in which may suffer from the problem of the convergence to the local maximum. The proposed approach can surely converge to the global maximum for achieving the solution. The computation complexity is much less than the grid-search method and easily be implemented in hardware. The MSE performance of the proposed algorithm is close to the Cramer-Rao Lower bound which is shown in the simulation result.
[1] J. Bingham, “Multicarrier modulation for data transmission: An idea whose time has come,” IEEE Commun. Mag., vol. 28, pp. 5-14, May 1990.
[2] Digital Audio Broadcasting (DAB) to Mobile, Portable, and Fixed Receiver ETSI Std. ETS 300 401, May 2001.
[3] Digital Video Broadcasting (DVB-T); Frame Structure, Channel Coding, and Modulation for Digital Terrestrial Television, ETSI Std. ETS 300744, Dec. 2001.
[4] Supplement to IEEE Std. 802.11, Wireless LAN Media Access Control(MAC) and Physical Layer (PHY) Specifications:High-SpeedPhysical Layer in the 5 GHZ Band, IEEE Std. 802.11a, 2001.
[5] Broadband Radio Access Network (BRAN): HIPERLAN Type 2 Functional Specification Part 1—Physical Layer, ETSI Std. ETS/BRAN 030003-1, June 1999.
[6] J. Lee, H. Lou, D. Toumpakaris, and J. M. Cioffi, “Effect of carrierfrequency offset on OFDM systems for multipath fading channels,”IEEE Global Telecommun. Conf., vol.6, pp.3721-3725, Nov. 2004.
[7] M. Morelli and U. Mengali, “Carrier-frequency estimation for transmissions over selective channels,” IEEE Trans. Commun., vol. 48,no.9, Sept. 2000.
[8] W.-G. Song and J.-T. Lim, “Pilot-symbol aided channel estimation for OFDM with fast fading channels,” IEEE Trans. Broadcast., vol. 49, no. 4, pp. 398-402, Dec. 2003.
[9] T. Cui, C. Tellambura, and Y. Wu, “Low-complexity pilot-aidedchannel estimation for OFDM systems over doubly selective channels,” IEEE Int. Conf. Commun., vol.3, pp. 1980-1984, May 2005.
[10] H. Nguyen-Le and T. Le-Ngoc, “Pilot-aided joint CFO and doubly-selective channel estimation for OFDM transmissions,” IEEE Trans. Broadcast., vol. 56, no. 4, pp. 514-522, Dec. 2010.
[11] X. Ma, C. Tepedelenlioglu, G. B. Giannakis, and S.Barbarossa, ”Non-data-aided carrier offset estimation for OFDM with null subcarriers: identifiability, algorithms, and performance," IEEE Jour. Select. Areas Commun., vol. 19, no. 12, pp. 2504-2515, Dec. 2001.
[12] M. Ghogho and A. Swami, “Blind frequency-offset estimator for OFDM systems transmitting constant-modulus symbols," IEEE Commun. Lett., vol.6, no.8, pp. 343-345, Aug. 2002.
[13] Y. Yao and G. Giannakis, “Blind carrier frequency offset estimation in SISO, MIMO, and multiuser OFDM systems," IEEE Trans. Commun., vol. 53, pp. 173-183, Jan. 2005.
[14] T. Fusco, and M. Tanda, ”Blind synchronization for OFDM systems In multipath channels,” IEEE Trans. Wireless Commun., vol. 8, no. 3, pp. 1340-1348, Mar. 2009.
[15] H.-C.Wu, X. Huang, and D. Xu, “Pilot-free dynamic phase and amplitude estimations for wireless ICI self-cancellation coded OFDM systems,” IEEE Trans. Broadcast., vol. 51, no. 1, pp. 105-394, Mar. 2005.
[16] H.-C.Wu, “Analysis and characterization of intercarrier and interblock interferences for wireless mobile OFDM systems,” IEEE Trans. Broadcast., vol. 52, no. 2, pp. 203-210, Jun. 2006.
[17] X. Huang and H.-C.Wu, “Robust and efficient intercarrier interference mitigation for OFDM systems in time-varying fading channels,” IEEE Trans. Veh. Technol., vol. 56, no. 5, pp. 2517-2528, Sept. 2007.
[18] H.-C. Wu, X. Huang, Y. Wu, and X. Wang, “Theoretical studies and efficient algorithm of semi-blind ICI equalization for OFDM,” IEEE Trans. Wireless Commun., vol. 7, no. 10, pp. 3791-3798, Oct. 2008.
[19] J. Chen, Y.C. Wu and T.S. Ng: “Optimal joint CFO and channel estimation in quasi-synchronized OFDM systems,” IEEE Global Telecommun. Conf., pp. 2816-2820, Nov. 2007.
[20] H. Jin and J. Moon, “Joint CFO, data symbol and channel response estimation in OFDM systems” IEEE Int. Conf. Commun, vol.3, pp. 2127-2133, May 2005.
[21] C. Tao and C. Tellambura,“Robust joint frequency offset and channel estimation for OFDM systems,” IEEE Veh.Technol. Conf., vol.1, pp. 603-607, Sept. 2004.
[22] Man-On Pun; Shang-Ho Tsai; Kuo, C.-C.J, “Joint maximum likelihood estimation of carrier frequency offset and channel in uplink OFDMA systems,” IEEE Global Telecommun. Conf., vol.6, pp. 3748-3752 Dec.2004.
[23] J. D. Markel, “FFT Pruning,” IEEE Trans. Audio Elect., vol.19, no.4 pp. 305-311, Dec. 1971.
[24] P. Stoica and O. Besson, ‘‘Training sequence design for frequency offset and frequency-selective channel estimation,’’ IEEE Trans. Commun., vol. 51, no. 11, pp. 1910--1917, Nov. 2003.