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首页> 外文期刊>Vehicular Technology, IEEE Transactions on >A Maximum Likelihood Combining Algorithm for Spatial Multiplexing MIMO Amplify-and-Forward Relaying Systems
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A Maximum Likelihood Combining Algorithm for Spatial Multiplexing MIMO Amplify-and-Forward Relaying Systems

机译:空间复用MIMO放大转发中继系统的最大似然合并算法

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Using a spatial multiplexing transmission scheme can improve the data rate in multiple-input–multiple-output (MIMO) relaying systems, while making signal detection more difficult at receivers. Aiming at lowering the computational complexity of the receiver, this paper proposes a maximum likelihood combining (MLC) algorithm for spatial multiplexing MIMO amplify-and-forward (AF) relaying systems in a Rayleigh flat-fading environment, which is implemented before maximum likelihood (ML) detection. The combining signal and equivalent channel are opportunely designed based on the ML rule in the MLC algorithm. We also formulate the diversity gain of the systems that employ the MLC algorithm mathematically, induced by the Chernoff bound of pairwise error probability (PEP). An upper bound on the symbol error probability (SEP) for the MLC algorithm with multiple modulations is also given, based on the derived bound of PEP. Moreover, the complexities of ML receivers adopting the MLC algorithm and the conventional vector combining (VC) algorithm are analyzed. Numerical simulations indicate that systems with the MLC algorithm achieve the same performance while consuming lower computational complexity compared to that with the VC algorithm.
机译:使用空间复用传输方案可以提高多输入多输出(MIMO)中继系统中的数据速率,同时使接收机的信号检测更加困难。为了降低接收机的计算复杂度,本文提出了一种最大似然合并(MLC)算法,用于在瑞利平坦衰落环境中的空间复用MIMO放大转发(AF)中继系统,该算法在最大似然( ML)检测。基于MLC算法中的ML规则,适当地设计了组合信号和等效信道。我们还通过对数误差率(PEP)的Chernoff边界在数学上公式化了采用MLC算法的系统的分集增益。基于派生的PEP边界,还给出了具有多种调制方式的MLC算法的符号错误概率(SEP)的上限。此外,分析了采用MLC算法和常规矢量合并(VC)算法的ML接收机的复杂性。数值仿真表明,与VC算法相比,使用MLC算法的系统可实现相同的性能,同时消耗较低的计算复杂度。

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