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PCA-Aided Linear Precoding in Massive MIMO Systems with Imperfect CSI

机译:具有不完美CSI的大型MIMO系统中的PCA辅助线性预编码

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In this paper, a low-complexity linear precoding algorithm based on the principal component analysis technique in combination with the conventional linear precoders, called Principal Component Analysis Linear Precoder (PCA-LP), is proposed for massive MIMO systems. The proposed precoder consists of two components: the first one minimizes the interferences among neighboring users and the second one improves the system performance by utilizing the Principal Component Analysis (PCA) technique. Numerical and simulation results show that the proposed precoder has remarkably lower computational complexity than its low-complexity lattice reduction-aided regularized block diagonalization using zero forcing precoding (LC-RBD-LR-ZF) and lower computational complexity than the PCA-aided Minimum Mean Square Error combination with Block Diagonalization (PCA-MMSE-BD) counterparts while its bit error rate (BER) performance is comparable to those of the LC-RBD-LR-ZF and PCA-MMSE-BD ones.
机译:本文提出了一种基于主成分分析技术的低复杂性线性预编码算法与传统的线性预制器组合,称为主成分分析线性预制件(PCA-LP),用于大规模MIMO系统。所提出的预编码器由两个组件组成:第一个组件最小化相邻用户之间的干扰,第二个是通过利用主成分分析(PCA)技术来提高系统性能。数值和仿真结果表明,使用零强制预编码(LC-RBD-LR-ZF),所提出的预编码器的计算复杂性比其低复杂性晶格还原辅助块对角线和较低的计算复杂性低于PCA辅助最小均值与块对角化(PCA-MMSE-BD)对应的方误差组合,而其误码率(BER)性能可与LC-RBD-LR-ZF和PCA-MMSE-BD ONE相当。

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