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Distributed Compressed Sensing of Doubly Selective Channel in Massive MIMO Systems

机译:大规模MIMO系统中双重选择性通道的分布式压缩检测

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With the number of antennas and users increases significantly, and the complexity of channel estimation and pilot overhead increase continuously in Massive MIMO systems. To solve this problem, in this paper, a doubly selective channel estimation method based on distributed compressed sensing (DCS) is proposed for large-scale MIMO system. Firstly, the problem of doubly selective channel estimation is formulated under the framework of DCS. Then the joint sparsity of doubly selective channel is theoretically proved by showing that the channel coefficients in transformed domain have the spatial correlation between the adjacent antennas. By exploiting the joint sparsity of transformed domain coefficients corresponding to the channel between different transmit and receive antennas, the channel coefficients is reconstructed by distributed compressed reconstruction algorithm. The simulation results show that the proposed approach can reconstruct the original channel coefficient effectively with significantly reduced pilot overhead.
机译:随着天线的数量和用户的数量显着增加,并且在大规模的MIMO系统中连续增加信道估计和试验开销的复杂性。为了解决这个问题,本文提出了一种基于分布式压缩感测(DCS)的双重选择性信道估计方法,用于大规模MIMO系统。首先,在DCS的框架下制定双重选择性信道估计的问题。然后理论上证明了双重选择性通道的关节稀疏性,通过表示变换域中的通道系数具有相邻天线之间的空间相关性。通过利用与不同发射和接收天线之间的通道对应的变换域系数的关节稀疏性,通过分布式压缩重建算法重建信道系数。仿真结果表明,该方法可以有效地重建原始信道系数,显着降低了导频开销。

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