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Robust Minimax MSE Equalizer Designs for MIMO Wireless Communications With Time-Varying Channel Uncertainties

机译:具有时变信道不确定性的MIMO无线通信的鲁棒Minimax MSE均衡器设计

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In this paper, we propose robust equalizers based on a minimax mean-squares-error (MSE) scheme for wireless multi-input-multi-output (MIMO) communications subject to time-varying channel uncertainties. We consider channel uncertainties within a neighborhood of the estimated channel matrix formed by placing a bound on the spectral matrix norm of channel estimation errors. First, we derive a linear-matrix-inequality (LMI) based solution to the targeted problem. Next, we modify the MSE cost function of the targeted problem and derive a guaranteed cost-based solution, which may save computational cost. Subsequently, channel uncertainty is partitioned into finite Markov-transitioned channel uncertainty states based on the least upper bound of the set of the tightest upper bounds on the matrix spectral norm of channel uncertainty. This leads to a multiple model-based minimax MSE approach. On this basis, a feasible equalizer can be obtained from a weighted combination of multiple over-guaranteed cost-based equalizers, each of which is designed with respect to a channel uncertain state. Simulation results show that a weighted combination of a moderate number of multiple over-guaranteed cost-based equalizers can achieve robust equalization effectively with superior MSE and bit-error-rate (BER) performance.
机译:在本文中,我们提出了基于最小均方误差(MSE)方案的鲁棒均衡器,该方案用于时变信道不确定性的无线多输入多输出(MIMO)通信。我们考虑通过在信道估计误差的频谱矩阵范数上设置界限而形成的估计信道矩阵附近的信道不确定性。首先,我们针对目标问题得出基于线性矩阵不等式(LMI)的解决方案。接下来,我们修改目标问题的MSE成本函数,并得出有保证的基于成本的解决方案,这可以节省计算成本。随后,基于信道不确定性的矩阵谱范数上最紧密上限的集合的最小上限,将信道不确定性划分为有限的马尔可夫变换的信道不确定性状态。这导致了基于多个模型的minimax MSE方法。在此基础上,可以从多个过分保证的基于成本的均衡器的加权组合中获得可行的均衡器,每个均衡器都是针对信道不确定状态进行设计的。仿真结果表明,适量多个基于成本的均衡器的加权组合可以有效地实现鲁棒的均衡,并具有出色的MSE和误码率(BER)性能。

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