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A limited feedback scheme for massive MIMO systems based on principal component analysis

机译:基于主成分分析的大规模MIMO系统有限反馈方案

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Massive multiple-input multiple-output (MIMO) is becoming a key technology for future 5G cellular networks. Channel feedback for massive MIMO is challenging due to the substantially increased dimension of the channel matrix. This motivates us to explore a novel feedback reduction scheme based on the theory of principal component analysis (PCA). The proposed PCA-based feedback scheme exploits the spatial correlation characteristics of the massive MIMO channel models, since the transmit antennas are deployed compactly at the base station (BS). In the proposed scheme, the mobile station (MS) generates a compression matrix by operating PCA on the channel state information (CSI) over a long-term period, and utilizes the compression matrix to compress the spatially correlated high-dimensional CSI into a low-dimensional representation. Then, the compressed low-dimensional CSI is fed back to the BS in a short-term period. In order to recover the high-dimensional CSI at the BS, the compression matrix is refreshed and fed back from MS to BS at every long-term period. The information distortion of the proposed scheme is also investigated and a closed-form expression for an upper bound to the normalized information distortion is derived. The overhead analysis and numerical results show that the proposed scheme can offer a worthwhile tradeoff between the system capacity performance and implementation complexity including the feedback overhead and codebook search complexity.
机译:大规模多输入多输出(MIMO)成为未来5G蜂窝网络的关键技术。由于信道矩阵的尺寸大大增加,大规模MIMO的信道反馈具有挑战性。这激励我们探索基于主成分分析(PCA)理论的新颖的反馈减少方案。提出的基于PCA的反馈方案利用了大规模MIMO信道模型的空间相关特性,因为发射天线紧凑地部署在基站(BS)上。在所提出的方案中,移动站(MS)通过长期对信道状态信息(CSI)进行PCA操作来生成压缩矩阵,并利用该压缩矩阵将空间相关的高维CSI压缩为低维表示。然后,在短时间内将压缩的低维CSI反馈给BS。为了在BS处恢复高维CSI,在每个长期周期刷新压缩矩阵并将其从MS反馈到BS。还研究了所提出的方案的信息失真,并且导出了归一化信息失真的上限的闭式表达式。开销分析和数值结果表明,该方案可以在系统容量性能与实现复杂度(包括反馈开销和码本搜索复杂度)之间进行折中。

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