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Statistical Eigenmode Transmission Over Jointly Correlated MIMO Channels

机译:联合相关MIMO信道上的统计本征模传输

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摘要

We investigate multiple-input multiple-output (MIMO) eigenmode transmission using statistical channel state information at the transmitter. We consider a general jointly correlated MIMO channel model, which does not require separable spatial correlations at the transmitter and receiver. For this model, we first derive a closed-form tight upper bound for the ergodic capacity, which reveals a simple and interesting relationship in terms of the matrix permanent of the eigenmode channel coupling matrix and embraces many existing results in the literature as special cases. Based on this closed-form and tractable upper bound expression, we then employ convex optimization techniques to develop low-complexity power allocation solutions involving only the channel statistics. Necessary and sufficient optimality conditions are derived, from which we develop an iterative water-filling algorithm with guaranteed convergence. Simulations demonstrate the tightness of the capacity upper bound and the near-optimal performance of the proposed low-complexity transmitter optimization approach.
机译:我们研究在发射机处使用统计信道状态信息的多输入多输出(MIMO)本征模式传输。我们考虑一个通用的联合相关的MIMO信道模型,该模型不需要在发送器和接收器处有可分离的空间相关性。对于此模型,我们首先导出遍历容量的封闭形式紧上限,这揭示了本征模耦合矩阵的矩阵永久性方面的简单且有趣的关系,并将文献中的许多现有结果作为特殊情况包含在内。基于此闭合形式和易处理的上限表达式,我们然后采用凸优化技术来开发仅涉及信道统计信息的低复杂度功率分配解决方案。得出了必要的和充分的最优性条件,从中我们开发了一种具有保证收敛性的迭代注水算法。仿真证明了所提出的低复杂度发射机优化方法的容量上限的紧密性和接近最佳的性能。

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