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Blind Recursive Subspace-Based Identification of Time-Varying Wideband MIMO Channels

机译:基于盲递归子空间的时变宽带MIMO信道识别

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摘要

We present a blind recursive algorithm for tracking rapidly time-varying wireless channels in precoded multiple-input–multiple-output (MIMO) orthogonal frequency-division multiplexing (OFDM) systems. Subspace-based tracking is normally considered for slowly time-varying channels only. Due to the frequency correlation of the wireless channels, the proposed scheme can collect data not only from the time but from the frequency domain as well to speed up the update of the required second-order statistics. After each such update, the subspace information is recomputed using the orthogonal iteration, and then, a new channel estimate is obtained. We also investigate choices of precoder in terms of the tradeoff between the symbol recovery capability and the channel estimation performance and demonstrate the convergence properties of our approach. The proposed algorithm is evaluated in a Third-Generation Partnership Project (3GPP) Spatial Channel Model suburban macro scenario, in which a mobile station is allowed to move in any direction with a speed up to 100 km/h, corresponding to a maximum Doppler shift of about 230 Hz in this case. Numerical experiments show that the normalized mean square error of the channel estimates converges to a level of $-$30 dB within less than five OFDM symbols when the signal-to-noise ratio (SNR) (per symbol) is $geq$ 20 dB.
机译:我们提出了一种盲递归算法,用于跟踪预编码的多输入多输出(MIMO)正交频分复用(OFDM)系统中快速时变的无线信道。通常只将基于子空间的跟踪用于时变缓慢的频道。由于无线信道的频率相关性,所提出的方案不仅可以从时域而且可以从频域收集数据,以加快所需二阶统计量的更新。在每次这样的更新之后,使用正交迭代来重新计算子空间信息,然后,获得新的信道估计。我们还根据符号恢复能力和信道估计性能之间的折衷研究了预编码器的选择,并证明了我们方法的收敛性。在第三代合作伙伴计划(3GPP)空间信道模型郊区宏场景中对提出的算法进行了评估,在该场景中,允许移动站以最高100 km / h的速度在任意方向上移动,这对应于最大多普勒频移在这种情况下约为230 Hz。数值实验表明,当信噪比(SNR)(每个符号)为20 geq $ 20 dB时,信道估计值的归一化均方误差在不到五个OFDM符号内收敛到30 dB。

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