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Compressive Sensing Based Hybrid Beamforming for Adaptively-Connected Structure

机译:自适应连接结构基于压缩感知的混合波束成形

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Hybrid multiple-input multiple-output (MIMO) has been thought as a promising technology for 5G communications. Compared with the fully-connected structure in hybrid MIMO systems, the adaptively-connected structure requires a significantly reduced number of analog phase shifters (APSs) and no radio frequency (RF) adder. In this paper, we focus on the multi-user massive MIMO system with adaptively-connected structure and propose a compressive sensing (CS) based method to design hybrid beamforming. The RF combiner for each user is independently designed based on the decomposition of the channel. By exploiting the sparse structure of RF precoder, we develop an iterative greedy algorithm to jointly design the RF precoder and baseband precoder, aiming at maximizing the effective signal power as well as eliminating the multi-user interference. Moreover, upper bound of the achievable sum rate for the proposed scheme is derived. The numerical results demonstrate that the proposed scheme can approach the performance of fully-connected scheme and achieve a higher sum rate than the existing schemes in both Rayleigh fading channel and millimeter wave channel.
机译:混合多输入多输出(MIMO)已被认为是5G通信的一项有前途的技术。与混合MIMO系统中的全连接结构相比,自适应连接结构需要大量减少的模拟移相器(APS)和无射频(RF)加法器。在本文中,我们将重点放在具有自适应连接结构的多用户大规模MIMO系统上,并提出一种基于压缩感知(CS)的方法来设计混合波束成形。每个用户的RF合并器都是基于信道分解独立设计的。通过利用RF预编码器的稀疏结构,我们开发了一种迭代贪婪算法,以共同设计RF预编码器和基带预编码器,旨在最大化有效信号功率并消除多用户干扰。此外,推导了所提出的方案可达到的总和率的上限。数值结果表明,所提出的方案在瑞利衰落信道和毫米波信道中都可以达到全连接方案的性能,并且比现有方案具有更高的求和率。

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