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Two-stage LASSO ADMM signal detection algorithm for large scale MIMO

机译:用于大规模MIMO的两级LASSO ADMM信号检测算法

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This paper explores the benefit of using some of the machine learning techniques and Big data optimization tools in approximating maximum likelihood (ML) detection of Large Scale MIMO systems. First, large scale MIMO detection problem is formulated as a LASSO (Least Absolute Shrinkage and Selection Operator) optimization problem. Then, Alternating Direction Method of Multipliers (ADMM) is considered in solving this problem. The choice of ADMM is motivated by its ability of solving convex optimization problems by breaking them into smaller sub-problems, each of which are then easier to handle. Further improvement is obtained using two stages of LASSO with interference cancellation from the first stage. The proposed algorithm is investigated at various modulation techniques with different number of antennas. It is also compared with widely used algorithms in this field. Simulation results demonstrate the efficacy of the proposed algorithm for both uncoded and coded cases.
机译:本文探讨了使用某些机器学习技术和大数据优化工具来近似大规模MIMO系统的最大似然(ML)检测的好处。首先,将大规模MIMO检测问题表述为LASSO(最小绝对收缩和选择算子)优化问题。然后,在解决这个问题时考虑了乘数交变方向法(ADMM)。 ADMM之所以选择,是因为它有能力解决凸优化问题,方法是将凸问题分解为较小的子问题,每个子问题都更易于处理。使用LASSO的两个阶段可实现进一步的改进,并且从第一阶段就可以消除干扰。在不同数量天线的各种调制技术下对提出的算法进行了研究。还将它与该领域中广泛使用的算法进行比较。仿真结果证明了该算法在未编码和已编码情况下的有效性。

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