大规模MIMO随机几何与部分CSIT波束形成分析

C. Thomas, D. Slock
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摘要

研究了多输入单输出干扰广播信道(IBC)在不完全信道状态信息条件下的协调波束形成问题。我们从BF设计开始,该设计优化了遍历容量的大规模MISO上限上限,称为期望信号和干扰功率加权和率(ESIP-WSR)。我们扩展了最近引入的具有部分CSIT的波束成形器的大系统分析(LSA),通过随机几何启发的信道协方差特征空间的随机化,导致更简单的分析结果。这些只依赖于一些基本的信道特性,如天线和用户的数量,信道秩和特征值轮廓,以及(信道估计)信噪比(SNR)。我们分析了极端信噪比区域的频谱效率行为,与具有线性最小均方误差(LMMSE)信道估计的ESIP-WSR BF相比,它(通过信噪比偏移)提供了对各种信道估计和次优BF特性的见解。此外,仿真验证了ESIP-WSR BF与不同信道估计的次优BF相比的优越性能,以及本文导出的大系统近似的准确性。我们的分析集中在恒定信道估计制度,这是有限速率反馈信道和试点污染制度的指示。
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Massive MIMO Stochastic Geometry and Analysis of Beamforming with Partial CSIT
We consider coordinated beamforming (BF) for the Multi-Input Single-Output (MISO) Interfering Broadcast Channel (IBC) under imperfect channel state information at the transmitter(s) (CSIT). We start from a BF design which optimizes a Massive MISO limit upper bound of the ergodic capacity, termed Expected Signal and Interference Power Weighted Sum Rate (ESIP-WSR). We extend a recently introduced large system analysis (LSA) for beamformers with partial CSIT, by a stochastic geometry inspired randomization of the channel covariance eigen spaces, leading to much simpler analytical results. These depend only on some essential channel characteristics such as the numbers of antennas and users, channel rank and eigenvalue profile, and (channel estimate) signal to noise ratio (SNR). We analyze the spectral efficiency behavior at extreme SNR regions which provide insights (through the SNR offset) into the characteristics of the various channel estimates and suboptimal BFs compared to ESIP-WSR BF with Linear Minimum Mean Squared Error (LMMSE) channel estimates. Furthermore, simulations validate the superior performance of ESIP-WSR BF compared to the suboptimal BFs with different channel estimates and also the accuracy of the large system approximations derived herein. Our analysis is focused on constant channel estimation regime which is indicative of the finite rate feedback channels and pilot contamination regime.
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