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Low-complexity MMSE detector for massive MIMO systems based on Damped Jacobi method

机译:基于阻尼雅可比方法的大规模MIMO系统低复杂度MMSE检测器

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Minimum mean square error (MMSE) linear detector is able to achieve the near-optimal bit error rate (BER) performance for uplink multi-user massive Multiple-Input Multiple-Output (MIMO) systems due to the increase in the number of base station (BS) antennas. However, this detector involves matrix inversion with high complexity, especially when the number of users is large. In order to reduce the complexity, in this paper, a low-complexity MMSE detector algorithm based on the Damped Jacobi (DJ) method is proposed. Further, a simple approach to determine the optimum and quasi-optimum damped parameter by exploiting the massive MIMO channel property of asymptotic orthogonality is developed. The analysis shows that the proposed algorithm can reduce the complexity of the classical MMSE detector by about one order of magnitude without performance loss. Finally, it is verified through simulation results that the proposed algorithm outperforms the recently proposed linear detector based on the conventional Jacobi method, and achieves the near-optimal performance of the classical MMSE detector with a small number of iterations in Rayleigh fading channels.
机译:最小均方误差(MMSE)线性检测器由于基站数量的增加,能够为上行链路多用户大规模多输入多输出(MIMO)系统实现接近最佳的误码率(BER)性能(BS)天线。然而,这种检测器涉及具有高复杂度的矩阵求逆,尤其是当用户数量很大时。为了降低复杂度,本文提出了一种基于阻尼雅可比(DJ)方法的低复杂度MMSE检测器算法。此外,开发了一种简单的方法,通过利用渐近正交性的大规模MIMO信道特性来确定最佳和准最佳阻尼参数。分析表明,该算法可以将传统的MMSE检测器的复杂度降低约一个数量级,而不会降低性能。最后,通过仿真结果验证了该算法的性能优于最近提出的基于传统雅可比方法的线性检测器,并且在瑞利衰落信道中经过很少的迭代即可达到经典MMSE检测器的最佳性能。

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