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SAGE algorithm based MAP channel estimation for multi-cell massive MIMO systems

机译:基于SAGE算法的多小区大规模MIMO系统的MAP信道估计

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摘要

This paper represents an efficient space-alternating generalized expectation-maximization (SAGE) algorithm based maximum a posteriori (MAP) channel estimation method for multi-cell massive multiple input multiple output (MIMO) systems. MAP channel estimation method requires conjugate transpose of a t × k pilot matrix where t is the number of pilot symbols per user and k is the number of single antenna users. Conjugate transpose of the large-size matrix increases computational complexity. The proposed method estimates the channel iteratively and converges to the same mean square error (MSE) performance of the MAP estimator with the increasing number of iterations. Consequently, the proposed method with low-rank approximation avoids conjugate transpose of the large-size matrix and hence reduces the computational complexity significantly.
机译:本文提出了一种有效的空间交替广义期望最大化(SAGE)算法,基于最大后验(MAP)信道估计方法,适用于多小区大规模多输入多输出(MIMO)系统。 MAP信道估计方法需要对t×k导频矩阵进行共轭转置,其中t是每个用户的导频符号数量,k是单个天线用户的数量。大尺寸矩阵的共轭转置会增加计算复杂性。所提出的方法迭代地估计信道,并且随着迭代次数的增加,收敛到与MAP估计器相同的均方误差(MSE)性能。因此,所提出的低秩逼近方法避免了大尺寸矩阵的共轭转置,从而显着降低了计算复杂度。

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