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Joint power allocation and MMSE equalizer designs for MIMO distributed relay networks

机译:用于MIMO分布式继电器网络的联合电源分配和MMSE均衡器设计

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In this paper, we jointly investigate the power allocation and the equalizer weights for multiple relay nodes in a distributed relay network where each node is equipped with multiple antennas. Based on the minimum mean-square error (MSE) criterion and under the total equalizer power constraint, multi-input multi-output (MIMO) equalizers are designed for equalizing-and-forwarding the signals from the source to the destination in the time domain. An iterative algorithm is proposed to obtain the optimal solution by using the Karush-Kuhn-Tucker (K.K.T.) conditions. With these optimal MIMO equalizers, the MIMO distributed relay network can effectively mitigate the inter-symbol interference (ISI) and achieve both the spatial and multipath diversity gains. Simulation results show that the proposed scheme outperforms the conventional one-tap equalizer scheme for MIMO distributed relay systems in terms of the bit error rate (BER) performance.
机译:在本文中,我们共同研究了分布式中继网络中的多个继电器节点的功率分配和均衡器权重,其中每个节点配备多个天线。 基于最小均方误差(MSE)标准,在总均衡器功率约束下,多输入多输出(MIMO)均衡器被设计用于在时域中将信号从源转发到目的地 。 提出了一种迭代算法,通过使用Karush-Kuhn-tucker(K.K.T.)条件来获得最佳解决方案。 利用这些最佳MIMO均衡器,MIMO分布式继电器网络可以有效地减轻符号间干扰(ISI)并实现空间和多路径分集增益。 仿真结果表明,该方案在误码率(BER)性能方面优于MIMO分布式继电器系统的传统单击均衡器方案。

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