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Distributed Two-Stage Multi-Cell Precoding

机译:分布式两阶段多小区预编码

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摘要

This paper proposes a distributed downlink precoding design for multi-cell massive multiple-input multiple-output systems. Two-stage precoding is adopted assuming that the user equipments (UEs) in each base station (BS) are grouped according to matching channel statistics. In this regard, the channel dimension is first reduced by means of statistical, group-specific processing. Subsequently, the UE-specific inner beamformers (IBFs) are optimized based on the resulting (lower-dimensional) effective channels, with sensibly reduced computational complexity. We begin by formulating a centralized IBF design that derives from iteratively solving the Karush-Kuhn-Tucker conditions of the weighted sum rate maximization problem. Then, we propose a distributed algorithm where inter-cell interference (ICI) terms and dual variables are periodically exchanged among neighboring BSs via backhaul signaling, whereas the inter-group interference (IGI) within each BS is handled locally. Furthermore, the ICI updates between the BSs are allowed to take place less frequently than the local IGI updates. Numerical results show that enabling backhaul signaling every 5-10 iterations of the algorithm yields a remarkably small performance loss with respect to the case with full information exchange between the BSs.
机译:本文提出了一种用于多小区大规模多输入多输出系统的分布式下行链路预编码设计。假设根据匹配的信道统计对每个基站(BS)中的用户设备(UE)进行分组,则采用两阶段预编码。在这方面,首先通过统计的,针对特定组的处理来减小信道尺寸。随后,基于结果的(较低维)有效信道优化UE特定的内部波束形成器(IBF),并显着降低计算复杂度。我们从制定集中式IBF设计开始,该设计源自对加权和率最大化问题的Karush-Kuhn-Tucker条件的迭代求解。然后,我们提出了一种分布式算法,其中小区间干扰(ICI)项和双变量通过回程信令在相邻BS之间定期交换,而每个BS中的组间干扰(IGI)是本地处理的。此外,与本地IGI更新相比,允许BS之间的ICI更新发生频率更低。数值结果表明,相对于在BS之间进行完全信息交换的情况,启用算法的每5-10次迭代回程信令会产生非常小的性能损失。

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