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Maximum likelihood low-complexity GSM detection for large MIMO systems

机译:大型MIMO系统的最大似然低复杂性GSM检测

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摘要

Hard-Output Maximum Likelihood (ML) detection for Generalized Spatial Modulation (GSM) systems involves obtaining the ML solution of a number of different MIMO subproblems, with as many possible antenna configurations as subproblems. Obtaining the ML solution of all of the subproblems has a large computational complexity, especially for large GSM MIMO systems. In this paper, we present two techniques for reducing the computational complexity of GSM ML detection. The first technique is based on computing a box optimization bound for each subproblem. This, together with sequential processing of the subproblems, allows fast discarding of many of these subproblems. The second technique is to use a Sphere Detector that is based on box optimization for the solution of the subproblems. This Sphere Detector reduces the number of partial solutions explored in each subproblem. The experiments show that these techniques are very effective in reducing the computational complexity in large MIMO setups.
机译:对于广义空间调制(GSM)系统的硬度输出最大似然(ML)检测涉及获得许多不同MIMO子问题的ML解决方案,以及作为子问题的许多可能的天线配置。获得所有子问题的ML解决方案具有大的计算复杂性,特别是对于大型GSM MIMO系统。在本文中,我们提出了两种用于降低GSM ML检测的计算复杂性的技术。第一种技术基于计算每个子问题的框优化绑定。这与子问题的顺序处理一起允许快速丢弃许多这些子问题。第二种技术是使用基于盒子优化的球体检测器来解决子问题的解决方案。该球体检测器减少了每个子问题探索的部分解决方案的数量。实验表明,这些技术在降低大型MIMO设置中的计算复杂性方面非常有效。

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