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Low-Complexity Soft-Output Signal Detection Based on Improved Kaczmarz Iteration Algorithm for Uplink Massive MIMO System

机译:基于改进Kaczmarz迭代算法的上行复杂大规模MIMO系统低复杂度软输出信号检测

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摘要

For multi-user uplink massive multiple input multiple output (MIMO) systems, minimum mean square error (MMSE) criterion-based linear signal detection algorithm achieves nearly optimal performance, on condition that the number of antennas at the base station is asymptotically large. However, it involves prohibitively high complexity in matrix inversion when the number of users is getting large. A low-complexity soft-output signal detection algorithm based on improved Kaczmarz method is proposed in this paper, which circumvents the matrix inversion operation and thus reduces the complexity by an order of magnitude. Meanwhile, an optimal relaxation parameter is introduced to further accelerate the convergence speed of the proposed algorithm and two approximate methods of calculating the log-likelihood ratios (LLRs) for channel decoding are obtained as well. Analysis and simulations verify that the proposed algorithm outperforms various typical low-complexity signal detection algorithms. The proposed algorithm converges rapidly and achieves its performance quite close to that of the MMSE algorithm with only a small number of iterations.
机译:对于多用户上行链路大规模多输入多输出(MIMO)系统,基于最小均方误差(MMSE)准则的线性信号检测算法可在基站天线数量渐近的情况下实现近乎最佳的性能。但是,当用户数量变大时,它在矩阵求逆中会涉及到非常高的复杂性。提出了一种基于改进Kaczmarz方法的低复杂度软输出信号检测算法,该算法避免了矩阵求逆运算,从而使复杂度降低了一个数量级。同时,引入了最佳松弛参数以进一步加快该算法的收敛速度,并且还获得了两种近似的计算对数似然比(LLR)进行信道解码的方法。分析和仿真证明,该算法优于各种典型的低复杂度信号检测算法。所提出的算法收敛迅速,并且仅通过少量迭代就可以达到与MMSE算法相当的性能。

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