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Subspace-Based Blind Channel Estimation for MIMO-OFDM Systems With Reduced Time Averaging

机译:减少平均时间的MIMO-OFDM系统基于子空间的盲信道估计

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Among the various approaches recently proposed for blind estimation of wideband multiple-input–multiple-output (MIMO) wireless channels, subspace-based algorithms are particularly attractive due to their good performance and simple structure. These algorithms primarily exploit the orthogonality of the noise and signal subspaces of the correlation matrix of the received signals to estimate the unknown channel coefficients. In practice, the correlation matrix is unknown and must be estimated through time averaging over multiple received samples. To this end, the unknown channel must remain time invariant through the averaging process, which may pose a serious problem in practical applications. In this paper, to relax this requirement, we propose a novel subspace-based blind channel-estimation algorithm with reduced time averaging, as obtained by exploiting the frequency correlation among adjacent subcarriers in MIMO orthogonal frequency-division multiplexing (OFDM) systems. Simulation results show that the proposed approach outperforms other previously proposed methods within a reasonable averaging time over a Third-Generation Partnership Project (3GPP) spatial channel model.
机译:在最近提出的用于宽带多输入多输出(MIMO)无线信道盲估计的各种方法中,基于子空间的算法由于其良好的性能和简单的结构而特别引人注目。这些算法主要利用接收信号的相关矩阵的噪声和信号子空间的正交性来估计未知信道系数。实际上,相关矩阵是未知的,必须通过对多个接收到的样本进行时间平均来估计。为此,未知信道必须在平均过程中保持时间不变,这在实际应用中可能会引起严重的问题。为了缓解这一要求,我们提出了一种新颖的基于子空间的盲信道估计算法,该算法通过利用MIMO正交频分复用(OFDM)系统中相邻子载波之间的频率相关性而获得了减少的平均时间。仿真结果表明,在第三代合作伙伴计划(3GPP)空间通道模型上,该方法在合理的平均时间内要优于其他方法。

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