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首页> 外文期刊>Signal Processing, IEEE Transactions on >A New Reduced-Complexity Conditional-Mean Based MIMO Signal Detection Using Symbol Distribution Approximation Technique
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A New Reduced-Complexity Conditional-Mean Based MIMO Signal Detection Using Symbol Distribution Approximation Technique

机译:基于符号分布近似技术的新的基于复杂度降低条件的均值MIMO信号检测

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In this correspondence, we propose a new conditional-mean based approach for a reduced-complexity suboptimal multiple-input multiple-output (MIMO) detector. In general, the optimal (error-minimizing) metric should take all possible symbol candidates into account and thus exhaustive computations are required. On the other hand, our new approach makes use of approximating the distributions of distinct symbol candidates by a continuous random variable such that the exhaustive summation is replaced by an integration that can be reduced to a simple closed form. The resulting metric depends only on a subset of symbol candidates and thus the overall complexity is reduced considerably. It is found that uniform ring approximation in combination with phase shift keying (PSK) and amplitude-modulated phase shift keying (APSK) achieves a performance close to that of maximum likelihood detection (MLD), while its complexity is a linear order of the modulation multiplicity when the number of transmit antennas is two.
机译:在这种对应关系中,我们为降低复杂度的次优多输入多输出(MIMO)检测器提出了一种基于条件均值的新方法。通常,最佳(误差最小化)度量应考虑所有可能的符号候选,因此需要详尽的计算。另一方面,我们的新方法利用连续随机变量逼近不同符号候选者的分布,以便穷举求和被可以简化为简单封闭形式的积分所代替。所得度量仅取决于符号候选者的子集,因此总体复杂度大大降低。发现均匀环近似与相移键控(PSK)和幅度调制相移键控(APSK)结合可实现接近最大似然检测(MLD)的性能,而其复杂度是调制的线性级发射天线数为两个时的多重性。

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