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A Metropolis-Hasting-Sampling Approach for Precoding in Downlink Massive MIMO Systems

机译:下行链路大规模MIMO系统中预编码的大都会加热器抽样方法

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In downlink massive multiple input multiple output (MIMO) systems, matrix polynomial expansion-based (MPEB) precoder suffers either slow convergence performance or complicated computation of polynomial coefficients. To address this issue, in this paper, we proposed a novel Metropolis-Hasting (MH) Sampling-based precoder which can improve the convergence significantly with simple calculation process. The matrix polynomial coefficients of the proposed precoding are designed to boost the precision of matrix inversion approximation. The optimal polynomial coefficients can be derived by an eigenvalues estimation algorithm based on MH Sampling approach. Simulation results exhibit that compared with the benchmark approximate precodings, the proposed MH precoding is able to achieve a significant enhancement performance with lower complexity. Meanwhile, the MH precoding shows low cost and simplicity in implementation.
机译:在下行链路巨大多输入多输出(MIMO)系统中,基于矩阵多项式扩展(MPEB)预编码器遭受慢的收敛性能或复杂计算多项式系数。 为了解决这个问题,在本文中,我们提出了一种新的大都市加速(MH)采样的预编码器,可以通过简单的计算过程显着提高收敛性。 所提出的预编码的矩阵多项式系数被设计为提高矩阵反转近似的精度。 最佳多项式系数可以通过基于MH采样方法的特征值估计算法导出。 仿真结果表明,与基准近似预编码相比,所提出的MH预编码能够实现具有较低复杂性的显着增强性能。 同时,MH预编码显示了低成本和实施方便。

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