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A Preamble-Based Frequency Offset Compensation Scheme in Multiple Input Multiple Output Orthogonal Frequency Division Multiplexing Systems | Science Publications

机译:多输入多输出正交频分复用系统中基于前同步码的频偏补偿方案科学出版物

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> Problem statement: Combining the properties of Multiple Input Multiple Output (MIMO) systems with those of Orthogonal Frequency Division Multiplexing (OFDM), MIMO-OFDM was considered to be a promising technique in the future of wireless communications. However, its sensitivity to frequency offsets which results in Inter-Carrier Interferences (ICIs) makes it necessary to use an exact frequency offset estimation method for data recovery in the MIMO-OFDM receiver. Approach: In this study, a new preamble-based frequency offset compensation method was introduced in frequency domain. In each block, two preambles are used to initially obtain the channel coefficients through LS channel estimation method. A polynomial curve fitting algorithm was then applied so that the frequency offsets experienced by every single data subcarrier are separately determined. Finally, to improve the compensating process, an iterative algorithm was applied. Results: Simulation results clearly showed that our proposed method was accurate in multipath fading channels and precisely recovered the transmitted data symbols. The BER performance of the iterative algorithm is within an acceptable distance of that in the ideal channel. Conclusion: In comparison with the conventional methods, our proposed scheme was less complex and showed better performance in lower SNRs. For further research, it can be investigated and improved while considering correlated antennas and spatial multiplexing.
机译: > 问题陈述:将多输入多输出(MIMO)系统的特性与正交频分复用(OFDM)的特性相结合,MIMO-OFDM被认为是一种有前途的技术在无线通信的未来。然而,其对导致载波间干扰(ICI)的频率偏移的敏感性使得有必要使用精确的频率偏移估计方法来在MIMO-OFDM接收机中进行数据恢复。 方法:在这项研究中,在频域中引入了一种新的基于前导的频偏补偿方法。在每个块中,两个前同步码用于通过LS信道估计方法初始获得信道系数。然后应用多项式曲线拟合算法,以便分别确定每个单个数据子载波所经历的频率偏移。最后,为了改进补偿过程,应用了迭代算法。 结果:仿真结果清楚地表明,我们提出的方法在多径衰落信道中是准确的,并且可以精确地恢复传输的数据符号。迭代算法的BER性能在理想通道的可接受范围内。 结论:与常规方法相比,我们提出的方案不那么复杂,并且在较低的SNR下表现出更好的性能。为了进一步研究,可以在考虑相关天线和空间复用的情况下对其进行研究和改进。

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