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Channel estimation for precoded MIMO systems

机译:预编码MIMO系统的信道估计

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We consider a block fading frequency selective multi-input multi-output (MIMO) channel in additive white Gaussian noise (AWGN). The channel input is a training vector superimposed on a linearly precoded vector of Gaussian symbols. This form of precoding is referred to as affine precoding. We derive the channel Cramer-Rao bound (CRB) and we show that tr(CRB) can be lowered if we design the precoder and training such that the channel estimation through the training component is not affected by the precoded symbols. We propose a deterministic channel estimation algorithm which combines a second order blind estimator capitalized on the redundant precoding, with a standard linear estimator which exploits only training. The simulation results show a performance improvement over the least square (LS) which utilizes only training to obtain the channel estimate.
机译:我们考虑加性高斯白噪声(AWGN)中的块衰落频率选择性多输入多输出(MIMO)信道。信道输入是叠加在线性线性编码的高斯符号矢量上的训练矢量。这种形式的预编码称为仿射预编码。我们推导了信道Cramer-Rao边界(CRB),并且我们表明,如果设计预编码器并进行训练,使得通过训练组件的信道估计不受预编码符号的影响,tr(CRB)可以降低。我们提出了一种确定性信道估计算法,该算法结合了利用冗余预编码的二阶盲估计器和仅利用训练的标准线性估计器。仿真结果表明,与仅利用训练获得信道估计的最小二乘(LS)相比,性能有所提高。

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