Efficient architecture for soft-output massive MIMO detection with Gauss-Seidel method

Zhizhen Wu, Chuan Zhang, Ye Xue, Shugong Xu, X. You
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引用次数: 92

Abstract

In massive multiple-input multiple-output (MIMO) uplink, the minimum mean square error (MMSE) algorithm is near-optimal and linear, but still suffers from high-complexity of matrix inversion. Based on Gauss-Seidel (GS) method, an efficient architecture for massive MIMO soft-output detection is proposed in this paper. To further accelerate the convergence rate of the conventional GS method with acceptable overhead complexity, a truncated Neumann series of the first 2 terms, is employed for initialization. The architecture can meet various application requirements by flexibly adjusting the number of iterations. FPGA implementation for a 128 × 8 MIMO demonstrates its advantages in both hardware efficiency and flexibility.
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高斯-塞德尔法软输出海量MIMO检测的高效体系结构
在大规模多输入多输出(MIMO)上行链路中,最小均方误差(MMSE)算法具有近似最优和线性的特点,但仍然存在矩阵反演的高复杂度。基于高斯-塞德尔(GS)方法,提出了一种高效的大规模MIMO软输出检测体系结构。为了在可接受的开销复杂度下进一步加快常规GS方法的收敛速度,采用前2项截断的Neumann级数进行初始化。该体系结构可以通过灵活调整迭代次数来满足各种应用需求。128 × 8 MIMO的FPGA实现证明了其在硬件效率和灵活性方面的优势。
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