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首页> 外文期刊>Wireless Communications Letters, IEEE >Sparse Array Channel Estimation for Subarray-Based Hybrid Beamforming Systems
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Sparse Array Channel Estimation for Subarray-Based Hybrid Beamforming Systems

机译:基于子阵列的混合波束形成系统的稀疏阵列信道估计

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摘要

Subarray-based hybrid beamforming communication systems are a cost- and power-efficient architectural solution to realize massive multiple-input multiple-output (MIMO) systems. To estimate the required channel state information (CSI) current research focuses on beam training algorithms, which suffer from long estimation times and require precise system calibration. In order to overcome these problems, two channel estimation algorithms in combination with suitable beamforming algorithms are proposed. The presented algorithms are based on sparse array measurements, where only one antenna per subarray is active during the estimation process. This allows for the reconstruction of the complex MIMO channel matrix by performing multiple sparse array measurements. Channel estimation algorithms, which drastically reduce the channel estimation time are proposed in this letter. Their high performance is proven in small cell communication measurements around 28 GHz.
机译:基于子阵列的混合波束形成通信系统是一种成本和高效的架构解决方案,以实现大规模的多输入多输出(MIMO)系统。为了估计所需的信道状态信息(CSI)当前研究侧重于波束训练算法,其遭受长估计时间,并且需要精确的系统校准。为了克服这些问题,提出了两个与合适的波束形成算法组合的信道估计算法。所提出的算法基于稀疏阵列测量,其中每个子阵列的一个天线在估计过程中是有效的。这允许通过执行多个稀疏阵列测量来重建复杂的MIMO信道矩阵。在这封信中提出了频道估计算法,其大大减少信道估计时间。他们的高性能在28 GHz的小型电池通信测量中被证明。

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